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Патент США №

9853342

Автор(ы)

Henry и др.

Дата выдачи

26 декабря 2017 г.


Dielectric transmission medium connector and methods for use therewith



РЕФЕРАТ

Aspects of the subject disclosure may include, for example, a connector that includes a first port configured to receive electromagnetic waves guided by a first dielectric core of a first transmission medium. A waveguide is configured to guide the electromagnetic waves from the first port to a second port. The second port is configured to transmit the electromagnetic waves to a second dielectric core of a second transmission medium. Other embodiments are disclosed.


Авторы:

Paul Shala Henry (Holmdel, NJ), William Scott Taylor (Norcross, GA), Robert Bennett (Southold, NY), Farhad Barzegar (Branchburg, NJ), Irwin Gerszberg (Kendall Park, NJ), Donald J Barnickel (Flemington, NJ), Thomas M. Willis, III (Tinton Falls, NJ)

Патентообладатель:

ИмяГородШтатСтранаТип

AT&T INTELLECTUAL PROPERTY I, LP

Atlanta

GA

US

Заявитель:

AT&T Intellectual Property I, L.P. (Atlanta, GA)

ID семейства патентов

56418633

Номер заявки:

14/799,314

Дата регистрации:

14 июля 2015 г.

Prior Publication Data

Document IdentifierPublication Date
US 20170018833 A1Jan 19, 2017

Класс патентной классификации США:

1/1

Класс совместной патентной классификации:

H01P 5/087 (20130101); H01P 3/16 (20130101); G02B 6/02 (20130101); G02B 6/3829 (20130101); H01P 3/122 (20130101); H01P 3/12 (20130101); G02B 6/4401 (20130101); H01P 1/16 (20130101); H04B 3/52 (20130101)

Класс международной патентной классификации (МПК):

H01P 3/16 (20060101); H01P 1/04 (20060101); H01P 3/12 (20060101); G02B 6/38 (20060101); H01P 5/08 (20060101); H01P 1/16 (20060101); H04B 3/52 (20060101)

Область поиска:

;333/239

Использованные источники

[Referenced By]

Патентные документы США

395814January 1889Henry et al.
529290November 1894Harry et al.
1721785July 1929Meyer
1798613March 1931Manson et al.
1860123May 1932Yagi
2058611October 1936Merkle et al.
2106770February 1938Southworth et al.
2129711September 1938Southworth
2129714September 1938Southworth et al.
2147717February 1939Schelkunoff
2187908January 1940McCreary
2199083April 1940Schelkunoff
2232179February 1941King
2283935May 1942King
2398095April 1946Katzin
2402622June 1946Hansen
2405242August 1946Southworth et al.
2407068September 1946Fiske et al.
2407069September 1946Fiske
2410113October 1946Jr.
2411338November 1946Roberts
2415089February 1947Feldman et al.
2415807February 1947Barrow et al.
2419205April 1947Feldman et al.
2420007May 1947Olden
2422058June 1947Whinnery
2432134December 1947Bagnall
2461005February 1949Southworth
2471021May 1949Bradley
2488400November 1949Harder
2513205June 1950Roberts et al.
2514679July 1950Southworth
2519603August 1950Reber
2540839February 1951Southworth
2541843February 1951Tiley et al.
2542980February 1951Barrow
2557110June 1951Jaynes
2562281July 1951Mumford
2596190May 1952Wiley
2599864June 1952Robertson-Shersby-Ha et al.
2659817November 1953Cutler et al.
2667578January 1954Barnett
2677055April 1954Allen
2685068July 1954Goubau
2688732September 1954Kock
2691766October 1954Clapp
2706279April 1955Aron
2711514June 1955Rines
2723378November 1955Clavier et al.
2727232December 1955Pryga
2735092February 1956Brown
2737632March 1956Grieg et al.
2740826April 1956Bondon
2745101May 1956Marie
2748350May 1956Miller et al.
2749545June 1956Kostriza
2754513July 1956Goubau
2761137August 1956Atta et al.
2769147October 1956Black et al.
2769148October 1956Clogston et al.
2770783November 1956Thomas et al.
2794959June 1957Fox
2805415September 1957Berkowitz
2806177September 1957Haeff et al.
2806972September 1957Sensiper
2810111October 1957Cohn
2819451January 1958Sims et al.
2820083January 1958Hendrix
2825060February 1958Ruze et al.
2835871May 1958Raabe
2851686September 1958Hagaman et al.
2867776January 1959Wilkinson, Jr.
2883135April 1959Smalley et al.
2883136April 1959Smalley et al.
2900558August 1959Watkins et al.
2910261October 1959Ward et al.
2912695November 1959Cutler
2914741November 1959Unger
2915270December 1959Gladsden et al.
2921277January 1960Goubau
2925458February 1960Lester et al.
2933701April 1960Lanctot et al.
2946970July 1960Hafner et al.
2949589August 1960Hafner
2960670November 1960Marcatili et al.
2970800February 1961Smalley et al.
2972148February 1961Rupp et al.
2974297March 1961Ros
2981949April 1961Elliott et al.
2990151June 1961Phillips et al.
2993205July 1961Cooper et al.
3016520January 1962Adam et al.
3025478March 1962Marcatili et al.
3028565April 1962Walker et al.
3040278June 1962Griemsmann et al.
3045238July 1962Cheston et al.
3046550July 1962Schlaud et al.
3047822July 1962Lakatos et al.
3065945November 1962Newsome et al.
3072870January 1963Walker
3077569February 1963Ikrath et al.
3087130April 1963Marcatili et al.
3096462July 1963Feinstein et al.
3101472August 1963Goubau
3109175October 1963Lloyd
3129356April 1964Phillips
3134951May 1964Huber et al.
3146297August 1964Hahne
3146453August 1964Hagaman
3201724August 1965Hafner
3205462September 1965Meinke
3218384November 1965Shaw
3219954November 1965Rutelli
3234559February 1966Bartholoma et al.
3255454June 1966Walter et al.
3296364January 1967Mason et al.
3296685January 1967Menahem et al.
3310808March 1967Friis et al.
3316344April 1967Toms et al.
3316345April 1967Toms et al.
3318561May 1967Robertson, Jr. et al.
3321763May 1967Ikrath et al.
3329958July 1967Anderson et al.
3351947November 1967Hart et al.
3355738November 1967Algeo et al.
3369788February 1968Eisele
3389394June 1968Lewis et al.
3392388July 1968Tsuneo et al.
3392395July 1968Hannan
3411112November 1968Honig et al.
3413637November 1968Goebels, Jr. et al.
3413642November 1968Cook
3414903December 1968Bartlett et al.
3419827December 1968Webb et al.
3420596January 1969Osterberg
3427573February 1969White et al.
3448455June 1969Alfandari et al.
3453617July 1969Brickey et al.
3459873August 1969Harris et al.
3465346September 1969Patterson et al.
3474995October 1969Amidon et al.
3482251December 1969Bowes
3487158December 1969Killian
3495262February 1970Robert et al.
3500422March 1970Grady et al.
3509463April 1970Woodward et al.
3522560August 1970Hayany
3524192August 1970Sakiotis et al.
3529205September 1970Miller
3530481September 1970Tanaka et al.
3531803September 1970Hudspeth et al.
3536800October 1970Hubbard
3555553January 1971Boyns
3557341January 1971Sochilin et al.
3566317February 1971Theodore
3568204March 1971Blaisdell
3569979March 1971Munk et al.
3573838April 1971Ajioka
3588754June 1971Hafner
3588755June 1971Kunio et al.
3589121June 1971Mulvey
3594494July 1971Sullivan
3599219August 1971Hansen et al.
3603904September 1971Hafner
3603951September 1971Bracken et al.
3609247September 1971Halstead
3623114November 1971Seaton
3624655November 1971Yamada et al.
3638224January 1972Bailey et al.
3653622April 1972Farmer
3666902May 1972Owen et al.
3668459June 1972Symons et al.
3668574June 1972Barlow
3672202June 1972Barber et al.
3683299August 1972Vzyatyshev et al.
3686596August 1972Thomas
3693922September 1972Gueguen
3699574October 1972Plunk et al.
3703690November 1972Ravenscroft et al.
3704001November 1972Sloop
3725937April 1973Schreiber
3753086August 1973Shoemaker et al.
3760127September 1973Grossi et al.
3765021October 1973Chiron et al.
3772528November 1973Anderson et al.
3775769November 1973Heeren et al.
3787872January 1974Kauffman
3796970March 1974Snell
3806931April 1974Wright
3833909September 1974Schaufelberger
3835407September 1974Yariv et al.
3845426October 1974Barlow
3858214December 1974Jones
3877032April 1975Rosa
3888446June 1975O'Brien et al.
3896380July 1975Martin
3906508September 1975Foldes
3911415October 1975Whyte
3921949November 1975Coon
3925763December 1975Wadhwani
3935577January 1976Hansen et al.
3936836February 1976Wheeler et al.
3936838February 1976Foldes et al.
3952984April 1976Dimitry et al.
3956751May 1976Herman
3959794May 1976Chrepta et al.
3973087August 1976Fong et al.
3973240August 1976Fong et al.
3976358August 1976Thompson et al.
3983560September 1976MacDougall et al.
4010799March 1977Kern et al.
4012743March 1977Maciejewski et al.
4020431April 1977Saunders et al.
4026632May 1977Hill et al.
4030048June 1977Foldes et al.
4030953June 1977Rutschow et al.
4031536June 1977Alford et al.
4035054July 1977Lattanzi et al.
4047180September 1977Kuo et al.
4079361March 1978Woode et al.
4080600March 1978Toman et al.
4099184July 1978Rapshys et al.
4114121September 1978Barlow et al.
4115782September 1978Han et al.
4123759October 1978Hines et al.
4125768November 1978Jackson et al.
4129841December 1978Hildebrand et al.
4129872December 1978Toman et al.
4141015February 1979Wong et al.
4149170April 1979Campbell et al.
4155108May 1979Tuttle et al.
4156241May 1979Mobley et al.
4166669September 1979Leonberger et al.
4175257November 1979Smith et al.
4188595February 1980Cronson et al.
4190137February 1980Shimada et al.
4191953March 1980Woode et al.
4195302March 1980Leupelt et al.
4210357July 1980Adachi et al.
4216449August 1980Kach
4220957September 1980Britt et al.
4231042October 1980Turrin et al.
4234753November 1980Clutter
4238974December 1980Fawcett et al.
4246584January 1981Noerpel et al.
4247858January 1981Eichweber et al.
4250489February 1981Dudash et al.
4268804May 1981Spinner et al.
4274097June 1981Krall et al.
4274112June 1981Leysieffer et al.
4278955July 1981Lunden et al.
4293833October 1981Popa et al.
4298877November 1981Sletten et al.
4300242November 1981Nava et al.
4307938December 1981Dyott et al.
4316646February 1982Siebens et al.
4319074March 1982Yaste et al.
4329690May 1982Parker et al.
4333082June 1982Susman et al.
4335613June 1982Luukkala et al.
4336719June 1982Lynnworth
4345256August 1982Rainwater et al.
4366565December 1982Herskowitz
4367446January 1983Hall et al.
4378143March 1983Winzer et al.
4384289May 1983Stillwell et al.
4398058August 1983Gerth et al.
4398121August 1983Chodorow et al.
4413263November 1983Amitay et al.
4447811May 1984Hamid et al.
4458250July 1984Bodnar et al.
4463329July 1984Suzuki et al.
4468672August 1984Dragone et al.
4475209October 1984Udren
4477814October 1984Brumbaugh et al.
4482899November 1984Dragone et al.
4488156December 1984DuFort et al.
4491386January 1985Negishi et al.
4495498January 1985Petrelis et al.
4516130May 1985Dragone
4525432June 1985Saito et al.
4525693June 1985Suzuki et al.
4533875August 1985Lau et al.
4541303September 1985Kuzunishi et al.
4550271October 1985Lau et al.
4553112November 1985Saad et al.
4556271December 1985Hubbard
4558325December 1985Stroem et al.
4565348January 1986Larsen
4566012January 1986Choung et al.
4567401January 1986Barnett et al.
4568943February 1986Bowman
4573215February 1986Oates et al.
4580116April 1986Ballato et al.
4589424May 1986Vaguine et al.
4598262July 1986Chen
4599598July 1986Komoda et al.
4604624August 1986Amitay et al.
4604627August 1986Saad et al.
4605914August 1986Harman et al.
4618867October 1986Gans et al.
4634858January 1987Gerdt et al.
4636753January 1987Geller et al.
4638322January 1987Lamberty et al.
4641916February 1987Oestreich et al.
4642651February 1987Kuhn et al.
4644365February 1987Horning et al.
4647329March 1987Oono et al.
4660050April 1987Phillips et al.
4665660May 1987Krall et al.
4672384June 1987Roy et al.
4673943June 1987Hannan
4680558July 1987Ghosh et al.
4694599September 1987Hart et al.
4704611November 1987Edwards et al.
4715695December 1987Nishimura et al.
4717974January 1988Baumeister et al.
4730172March 1988Bengeult
4730888March 1988Darcie et al.
4731810March 1988Watkins
4735097April 1988Lynnworth et al.
4743915May 1988Rammos et al.
4743916May 1988Bengeult
4745377May 1988Stern et al.
4746241May 1988Burbank, III et al.
4749244June 1988Luh
4755830July 1988Plunk et al.
4757324July 1988Dhanjal et al.
4758962July 1988Fernandes
4764738August 1988Fried et al.
4772891September 1988Svy
4777457October 1988Ghosh et al.
4785304November 1988Stern et al.
4786911November 1988Svy et al.
4786913November 1988Barendregt et al.
4788553November 1988Phillips et al.
4792771December 1988Siu et al.
4792812December 1988Rinehart et al.
4799031January 1989Lang et al.
4800350January 1989Bridges et al.
4801937January 1989Fernandes
4808950February 1989Apostolos et al.
4818963April 1989Green et al.
4818990April 1989Fernandes
4825221April 1989Suzuki
4829310May 1989Losee et al.
4829314May 1989Barbier et al.
4831346May 1989Brooker et al.
4832148May 1989Becker et al.
4835517May 1989Van Der et al.
4839659June 1989Stern et al.
4845508July 1989Krall et al.
4847610July 1989Ozawa et al.
4849611July 1989Whitney et al.
4851788July 1989Ives et al.
4855749August 1989DeFonzo et al.
4866454September 1989Droessler et al.
4873534October 1989Wohlleben et al.
4875026October 1989Walter et al.
4879544November 1989Maki et al.
4881028November 1989Bright et al.
4886980December 1989Fernandes et al.
4897663January 1990Kusano et al.
4904996February 1990Fernandes
4915468April 1990Kim et al.
4916460April 1990Powell et al.
4922180May 1990Saffer et al.
4929962May 1990Begout et al.
4931808June 1990Munson et al.
4932620June 1990Foy
4946202August 1990Perricone et al.
4965856October 1990Swanic
4977593December 1990Ballance
4977618December 1990Allen
4989011January 1991Rosen et al.
4998095March 1991Shields
5003318March 1991Hall et al.
5006846April 1991Granville et al.
5006859April 1991Wong et al.
5015914May 1991Ives et al.
5017936May 1991Massey et al.
5017937May 1991Newham et al.
5018180May 1991Shoulders
5019832May 1991Ekdahl et al.
5036335July 1991Jairam et al.
H956August 1991Reindel
5042903August 1991Jakubowski et al.
5043538August 1991Hughey et al.
5043629August 1991Doane et al.
5044722September 1991Voser et al.
5045820September 1991Oehlerking et al.
5057106October 1991Kasevich et al.
5065760November 1991Krause et al.
5065969November 1991McLean et al.
5072228December 1991Kuwahara et al.
5082349January 1992Cordova-Plaza et al.
5086467February 1992Malek
5107231April 1992Knox et al.
5109232April 1992Monte et al.
5113197May 1992Luh et al.
5117237May 1992Legg
5121129June 1992Lee et al.
5126750June 1992Wang et al.
5132968July 1992Cephus
5134251July 1992Martin et al.
5134423July 1992Haupt et al.
5134965August 1992Tokuda et al.
5136671August 1992Dragone et al.
5142767September 1992Adams et al.
5148509September 1992Kannabiran et al.
5152861October 1992Hann
5153676October 1992Bergh et al.
5166698November 1992Ashbaugh et al.
5174164December 1992Wilheim et al.
5175560December 1992Lucas et al.
5182427January 1993McGaffigan et al.
5187409February 1993Ito et al.
5193774March 1993Rogers et al.
5198823March 1993Litchford et al.
5212755May 1993Holmberg et al.
5214394May 1993Wong et al.
5214438May 1993Smith et al.
5216616June 1993Masters
5218657June 1993Tokudome et al.
5235662August 1993Prince et al.
5239537August 1993Sakauchi
5241321August 1993Tsao et al.
5241701August 1993Andoh et al.
5248876September 1993Kerstens et al.
5254809October 1993Martin
5265266November 1993Trinh
5266961November 1993Milroy et al.
5276455January 1994Fitzsimmons et al.
5278687January 1994Jannson et al.
5280297January 1994Profera et al.
5291211March 1994Tropper et al.
5298911March 1994Li et al.
5299773April 1994Bertrand et al.
5304999April 1994Roberts et al.
5311596May 1994Scott et al.
5327149July 1994Kuffer et al.
5329285July 1994McCandless et al.
5341088August 1994David
5345522September 1994Vali et al.
5347287September 1994Speciale et al.
5352984October 1994Piesinger et al.
5353036October 1994Baldry
5359338October 1994Hatcher et al.
5371623December 1994Eastmond et al.
5379455January 1995Koschek et al.
5380224January 1995DiCicco
5381160January 1995Landmeier
5389442February 1995Kathiresan et al.
5400040March 1995Lane et al.
5402140March 1995Rodeffer et al.
5402151March 1995Duwaer
5404146April 1995Rutledge et al.
5410318April 1995Wong et al.
5412654May 1995Perkins
5428364June 1995Lee et al.
5428818June 1995Meidan et al.
5434575July 1995Jelinek et al.
5440660August 1995Dombrowski et al.
5451969September 1995Toth et al.
5457469October 1995Diamond et al.
5473336December 1995Harman et al.
5479176December 1995Zavrel et al.
5481268January 1996Higgins
5482525January 1996Kajioka et al.
5486839January 1996Rodeffer et al.
5488380January 1996Harvey et al.
5495546February 1996Bottoms et al.
5499308March 1996Arai et al.
5499311March 1996DeCusatis et al.
5502392March 1996Arjavalingam et al.
5512906April 1996Speciale et al.
5513176April 1996Dean et al.
5514965May 1996Westwood et al.
5515059May 1996How et al.
5519408May 1996Schnetzer et al.
5528208June 1996Kobayashi et al.
5539421July 1996Hong et al.
5543000August 1996Lique
5557283September 1996Sheen
5559359September 1996Reyes
5566022October 1996Segev
5566196October 1996Scifres
5576721November 1996Hwang et al.
5586054December 1996Jensen et al.
5592183January 1997Henf
5600630February 1997Takahashi et al.
5603089February 1997Searle et al.
5619015April 1997Kirma
5621421April 1997Kolz et al.
5627879May 1997Russell et al.
5628050May 1997McGraw et al.
5630223May 1997Bahu et al.
5637521June 1997Rhodes et al.
5640168June 1997Heger et al.
5646936July 1997Shah et al.
5650788July 1997Jha
5652554July 1997Krieg et al.
5663693September 1997Doughty et al.
5671304September 1997Duguay
5677699October 1997Strickland
5677909October 1997Heide
5680139October 1997Huguenin et al.
5682256October 1997Motley et al.
5684495November 1997Dyott
5686930November 1997Brydon
5724168March 1998Oschmann et al.
5726980March 1998Rickard et al.
5748153May 1998McKinzie et al.
5750941May 1998Ishikawa et al.
5757323May 1998Spencer et al.
5767807June 1998Pritchett et al.
5768689June 1998Borg
5769879June 1998LeVay et al.
5784033July 1998Boldissar, Jr. et al.
5784034July 1998Konishi et al.
5784683July 1998Sistanizadeh et al.
5787673August 1998Noble
5793334August 1998Harrison et al.
5800494September 1998Campbell et al.
5805983September 1998Naidu et al.
5809395September 1998Hamilton-Piercy et al.
5812524September 1998Moran et al.
5818390October 1998Hill
5818396October 1998Harrison et al.
5818512October 1998Fuller
5845391December 1998Miklosko et al.
5848054December 1998Mosebrook et al.
5850199December 1998Wan et al.
5854608December 1998Leisten
5859618January 1999Miller, II et al.
5861843January 1999Sorace et al.
5867763February 1999Dean et al.
5870060February 1999Chen et al.
5872544February 1999Schay et al.
5872547February 1999Martek
5872812February 1999Saito et al.
5873324February 1999Kaddas et al.
5886666March 1999Schellenberg et al.
5889449March 1999Fiedziuszko
5890055March 1999Chu et al.
5892480April 1999Killen et al.
5898133April 1999Bleich et al.
5898830April 1999Wesinger, Jr. et al.
5900847May 1999Ishikawa et al.
5903373May 1999Welch et al.
5905438May 1999Weiss et al.
5905949May 1999Hawkes et al.
5910790June 1999Ohmuro et al.
5917977June 1999Barrett et al.
5922081July 1999Seewig et al.
5926128July 1999Brash et al.
5933422August 1999Suzuki et al.
5936589August 1999Kawahata
5948044September 1999Varley et al.
5948108September 1999Lu et al.
5952964September 1999Chan et al.
5952972September 1999Ittipiboon et al.
5952984September 1999Kuramoto et al.
5955992September 1999Shattil
5959578September 1999Kreutel et al.
5959590September 1999Sanford et al.
5973641October 1999Smith et al.
5977650November 1999Rickard et al.
5978738November 1999Brown et al.
5982276November 1999Stewart
5986331November 1999Letavic et al.
5987099November 1999O'Neill et al.
5990848November 1999Annamaa et al.
5994984November 1999Stancil et al.
5994998November 1999Fisher et al.
6005694December 1999Liu
6005758December 1999Spencer et al.
6009124December 1999Smith
6011520January 2000Howell et al.
6011524January 2000Jervis et al.
6014110January 2000Bridges et al.
6018659January 2000Ayyagari et al.
6023619February 2000Kaminsky
6026173February 2000Svenson et al.
6026208February 2000Will et al.
6026331February 2000Feldberg et al.
6031455February 2000Grube et al.
6034638March 2000Thiel et al.
6037894March 2000Pfizenmaier et al.
6038425March 2000Jeffrey et al.
6049647April 2000Register et al.
6057802May 2000Nealy
6061035May 2000Kinasewitz et al.
6063234May 2000Chen et al.
6075451June 2000Lebowitz et al.
6075493June 2000Sugawara et al.
6076044June 2000Brown et al.
6078297June 2000Kormanyos et al.
6088001July 2000Burger et al.
6095820August 2000Luxon et al.
6100846August 2000Li et al.
6103031August 2000Aeschbacher et al.
6107897August 2000Hewett et al.
6111553August 2000Steenbuck et al.
6114998September 2000Schefte et al.
6121885September 2000Masone et al.
6122753September 2000Masuo et al.
6140911October 2000Fisher et al.
6140976October 2000Locke et al.
6142434November 2000Brinkman et al.
6146330November 2000Tujino et al.
6150612November 2000Grandy et al.
6151145November 2000Srivastava et al.
6154488November 2000Hunt
6158383December 2000Watanabe et al.
6163296December 2000Lier et al.
6166694December 2000Ying et al.
6167055December 2000Ganek et al.
6175917January 2001Arrow et al.
6177801January 2001Chong et al.
6184828February 2001Shoki et al.
6195058February 2001Nakamura et al.
6195395February 2001Frodsham et al.
6198440March 2001Krylov et al.
6208161March 2001Suda et al.
6208308March 2001Lemons et al.
6208903March 2001Richards et al.
6211836April 2001Manasson et al.
6211837April 2001Crouch et al.
6215443April 2001Komatsu et al.
6219006April 2001Rudish
6222503April 2001Gietema et al.
6225960May 2001Collins et al.
6229327May 2001Boll et al.
6236365May 2001Karr et al.
6239377May 2001Nishikawa et al.
6239379May 2001Cotter et al.
6239761May 2001Guo et al.
6241045June 2001Reeve et al.
6243049June 2001Chandler et al.
6246821June 2001Hemken et al.
6252553June 2001Solomon et al.
6259337July 2001Wen et al.
6266016July 2001Bergstedt et al.
6266025July 2001Popa et al.
6268835July 2001Toland et al.
6271790August 2001Smith et al.
6271799August 2001Rief et al.
6271952August 2001Epworth et al.
6278357August 2001Croushore et al.
6278370August 2001Underwood et al.
6281769August 2001Fiedziuszko et al.
6281855August 2001Aoki et al.
6282354August 2001Jones et al.
6283425September 2001Liljevik
6285325September 2001Nalbandian et al.
6292139September 2001Yamamoto et al.
6292143September 2001Romanofsky et al.
6292153September 2001Aiello et al.
6300898October 2001Schneider et al.
6300906October 2001Rawnick et al.
6301420October 2001Greenaway et al.
6308085October 2001Shoki et al.
6311288October 2001Heeren et al.
6317028November 2001Valiulis et al.
6317092November 2001de Schweinitz et al.
6320509November 2001Brady et al.
6320553November 2001Ergene et al.
6323819November 2001Ergene et al.
6329959December 2001Varadan et al.
6335993January 2002Takahashi et al.
6348683February 2002Verghese et al.
6351247February 2002Linstrom et al.
6357709March 2002Parduhn et al.
6362788March 2002Louzir
6362789March 2002Trumbull et al.
6366238April 2002DeMore et al.
6373436April 2002Chen et al.
6373441April 2002Porath et al.
6376824April 2002Michenfelder et al.
6380822April 2002Lindgren et al.
6388564May 2002Piercy et al.
6388634May 2002Ramanujam et al.
6396440May 2002Chen et al.
6404773June 2002Williams et al.
6404775June 2002Leslie
6421021July 2002Rupp et al.
6433736August 2002Timothy et al.
6433741August 2002Tanizaki et al.
6436536August 2002Peruzzotti et al.
6441723August 2002Mansfield, Jr. et al.
6445351September 2002Baker et al.
6445774September 2002Kidder et al.
6452467September 2002McEwan
6452569September 2002Park et al.
6452923September 2002Gerszberg et al.
6455769September 2002Belli et al.
6456251September 2002Rao et al.
6462700October 2002Schmidt et al.
6463295October 2002Yun et al.
6469676October 2002Fehrenbach et al.
6473049October 2002Takeuchi et al.
6480168November 2002Lam et al.
6483470November 2002Hohnstein et al.
6489928December 2002Sakurada
6489931December 2002Liu et al.
6492957December 2002Carillo, Jr. et al.
6501433December 2002Popa et al.
6507573January 2003Brandt et al.
6510152January 2003Gerszberg et al.
6515635February 2003Chiang et al.
6522305February 2003Sharman et al.
6531991March 2003Adachi et al.
6532215March 2003Muntz et al.
6534996March 2003Amrany et al.
6535169March 2003Fourdeux et al.
6542739April 2003Garner
6549106April 2003Martin et al.
6549173April 2003King et al.
6552693April 2003Leisten et al.
6559811May 2003Cash et al.
6563981May 2003Weisberg et al.
6567573May 2003Domash et al.
6573803June 2003Ziegner et al.
6573813June 2003Joannopoulos et al.
6580295June 2003Takekuma et al.
6584084June 2003Barany et al.
6584252June 2003Schier et al.
6587077July 2003Vail et al.
6593893July 2003Hou et al.
6594238July 2003Wallentin et al.
6596944July 2003Clark et al.
6600456July 2003Gothard et al.
6606057August 2003Chiang et al.
6606066August 2003Fawcett et al.
6606077August 2003Ebling et al.
6611252August 2003DuFaux et al.
6614237September 2003Ademian et al.
6631229October 2003Norris et al.
6634225October 2003Reime et al.
6639484October 2003Tzuang et al.
6639566October 2003Knop et al.
6642887November 2003Owechko et al.
6643254November 2003Abe et al.
6650296November 2003Wong et al.
6653598November 2003Sullivan et al.
6653848November 2003Adamian et al.
6657437December 2003LeCroy et al.
6659655December 2003Dair et al.
6661391December 2003Ohara et al.
6668104December 2003Mueller-Fiedler et al.
6670921December 2003Sievenpiper et al.
6671824December 2003Hyland et al.
6677899January 2004Lee et al.
6680903January 2004Moriguchi et al.
6683580January 2004Kuramoto
6686832February 2004Abraham et al.
6686873February 2004Patel et al.
6686875February 2004Wolfson et al.
6697027February 2004Mahon et al.
6697030February 2004Gleener
6703981March 2004Meitzler et al.
6714165March 2004Verstraeten
6720935April 2004Lamensdorf et al.
6725035April 2004Jochim et al.
6727470April 2004Reichle et al.
6727891April 2004Moriya et al.
6728439April 2004Weisberg et al.
6728552April 2004Chatain et al.
6731210May 2004Swanson et al.
6731649May 2004Silverman
6737934May 2004Yamada et al.
6741705May 2004Nelson et al.
6747557June 2004Petite et al.
6750827June 2004Manasson et al.
6751441June 2004Murray
6753813June 2004Kushihi et al.
6754470June 2004Hendrickson et al.
6755312June 2004Dziedzic et al.
6756538June 2004Murga-Gonzalez et al.
6763195July 2004Willebrand et al.
6765479July 2004Stewart et al.
6768454July 2004Kingsley et al.
6768456July 2004Lalezari et al.
6768471July 2004Bostwick et al.
6768474July 2004Hunt et al.
6771216August 2004Patel et al.
6771225August 2004Tits et al.
6771739August 2004Beamon et al.
6774859August 2004Schantz et al.
6778729August 2004Guy et al.
6788865September 2004Kawanishi et al.
6788951September 2004Aoki et al.
6789119September 2004Zhu et al.
6792290September 2004Proctor, Jr. et al.
6798223September 2004Huang et al.
6806710October 2004Renz et al.
6809633October 2004Cern et al.
6809695October 2004Le Bayon et al.
6812895November 2004Anderson et al.
6819744November 2004Galli et al.
6822615November 2004Quan et al.
6839032January 2005Teshirogi et al.
6839160January 2005Tsuda et al.
6839846January 2005Mangold et al.
6842157January 2005Phelan et al.
6842430January 2005Melnik et al.
6850128February 2005Park
6853351February 2005Mohuchy et al.
6856273February 2005Bognar et al.
6859185February 2005Royalty et al.
6859187February 2005Ohlsson et al.
6859590February 2005Zaccone
6861998March 2005Louzir
6864851March 2005McGrath et al.
6864853March 2005Judd et al.
6867744March 2005Toncich et al.
6868258March 2005Hayata et al.
6870465March 2005Song et al.
6873265March 2005Bleier et al.
6885674April 2005Hunt et al.
6886065April 2005Sides et al.
6888623May 2005Clements
6901064May 2005Billhartz et al.
6904218June 2005Sun et al.
6906676June 2005Killen et al.
6906681June 2005Hoppenstein et al.
6909893June 2005Aoki et al.
6917974July 2005Stytz et al.
6920289July 2005Zimmerman et al.
6920315July 2005Wilcox et al.
6920407July 2005Phillips et al.
6922135July 2005Abraham et al.
6924732August 2005Yokoo et al.
6924776August 2005Le et al.
6928194August 2005Mai et al.
6933887August 2005Regnier et al.
6934655August 2005Jones et al.
6937595August 2005Barzegar et al.
6943553September 2005Zimmermann et al.
6944555September 2005Blackett et al.
6947147September 2005Motamedi et al.
6947376September 2005Deng et al.
6947635September 2005Kohns et al.
6948371September 2005Tanaka et al.
6950567September 2005Kline et al.
6952143October 2005Kinayman et al.
6952183October 2005Yuanzhu et al.
6956506October 2005Koivumaeki et al.
6958729October 2005Metz et al.
6961025November 2005Chethik et al.
6965302November 2005Mollenkopf et al.
6965355November 2005Durham et al.
6965784November 2005Kanamaluru et al.
6967627November 2005Roper et al.
6970502November 2005Kim et al.
6970682November 2005Crilly, Jr. et al.
6972729December 2005Wang et al.
6980091December 2005White, II et al.
6982611January 2006Cope et al.
6982679January 2006Kralovec et al.
6983174January 2006Hoppenstein et al.
6985118January 2006Killen et al.
6992639January 2006Lier et al.
6999667February 2006Jang et al.
7008120March 2006Zaborsky et al.
7009471March 2006Elmore
7012489March 2006Fisher et al.
7012572March 2006Schaffner et al.
7016585March 2006Diggle, III et al.
7019704March 2006Weiss et al.
7023400April 2006Hill et al.
7026917April 2006Berkman et al.
7027003April 2006Sasaki et al.
7027454April 2006Dent et al.
7032016April 2006Cerami et al.
7038636May 2006Larouche et al.
7039048May 2006Monta et al.
7042403May 2006Sievenpiper et al.
7042416May 2006Kingsley et al.
7042420May 2006Ebling et al.
7054286May 2006Ertel et al.
7054376May 2006Rubinstain et al.
7054513May 2006Herz et al.
7055148May 2006Marsh et al.
7057558June 2006Yasuho et al.
7057573June 2006Ohira et al.
7058524June 2006Hayes et al.
7061370June 2006Cern et al.
7061891June 2006Kilfoyle et al.
7064726June 2006Kitamori et al.
7068998June 2006Zavidniak et al.
7069163June 2006Gunther et al.
7075414July 2006Giannini et al.
7075485July 2006Song et al.
7075496July 2006Hidai et al.
7082321July 2006Kuwahara et al.
7084742August 2006Haines et al.
7088221August 2006Chan
7088306August 2006Chiang et al.
7098405August 2006Glew et al.
7098773August 2006Berkman et al.
7102581September 2006West et al.
7106265September 2006Robertson et al.
7106270September 2006Iigusa et al.
7106273September 2006Brunson et al.
7109939September 2006Lynch et al.
7110678September 2006Willebrand et al.
7113002September 2006Otsuka et al.
7113134September 2006Berkman et al.
7119755October 2006Harvey et al.
7120338October 2006Gunn, III et al.
7120345October 2006Naitou et al.
7122012October 2006Bouton et al.
7123191October 2006Goldberg et al.
7123801October 2006Fitz et al.
7125512October 2006Crump et al.
7126557October 2006Warnagiris et al.
7126711October 2006Fruth
7127348October 2006Smitherman et al.
7130516October 2006Wu et al.
7132950November 2006Stewart et al.
7133930November 2006Sabio et al.
7134012November 2006Doyle et al.
7134135November 2006Cerami et al.
7136397November 2006Sharma et al.
7136772November 2006Duchi et al.
7137605November 2006Guertler et al.
7138767November 2006Chen et al.
7138958November 2006Syed et al.
7139328November 2006Thomas et al.
7145440December 2006Gerszberg et al.
7145552December 2006Hollingsworth et al.
7151497December 2006Crystal et al.
7151508December 2006Schaffner et al.
7155238December 2006Katz et al.
7161934January 2007Buchsbaum et al.
7164354January 2007Panzer et al.
7167139January 2007Kim et al.
7171087January 2007Takahashi et al.
7171308January 2007Campbell et al.
7171493January 2007Shu et al.
7176589February 2007Rouquette et al.
7180459February 2007Damini et al.
7180467February 2007Fabrega-Sanchez
7183922February 2007Mendolia et al.
7183991February 2007Bhattacharyya et al.
7183998February 2007Wilhelm et al.
7193562March 2007Kish et al.
7194528March 2007Davidow et al.
7199680April 2007Fukunaga et al.
7200391April 2007Chung et al.
7200658April 2007Goeller et al.
7205950April 2007Imai et al.
7212163May 2007Huang et al.
7215220May 2007Jia et al.
7215928May 2007Gage et al.
7218285May 2007Davis et al.
7224170May 2007Graham et al.
7224243May 2007Cope et al.
7224272May 2007White, II et al.
7224320May 2007Cook et al.
7224985May 2007Caci et al.
7228123June 2007Moursund et al.
7234413June 2007Suzuki et al.
7234895June 2007Richardson et al.
7239284July 2007Staal et al.
7243610July 2007Ishii et al.
7248148July 2007Kline et al.
7250772July 2007Furse et al.
7255821August 2007Priedeman, Jr. et al.
7259657August 2007Mollenkopf et al.
7260424August 2007Schmidt et al.
7266154September 2007Gundrum et al.
7266275September 2007Hansen et al.
7268722September 2007Gottwald et al.
7272281September 2007Stahulak et al.
7272362September 2007Jeong et al.
7274305September 2007Luttrell
7274936September 2007Stern-Berkowitz et al.
7276990October 2007Sievenpiper et al.
7280033October 2007Berkman et al.
7280803October 2007Nelson et al.
7282922October 2007Lo et al.
7286099October 2007Lier et al.
7289449October 2007Rubinstein et al.
7289704October 2007Wagman et al.
7289828October 2007Cha et al.
7292125November 2007Mansour et al.
7292196November 2007Waterhouse et al.
7295161November 2007Gaucher et al.
7297869November 2007Hiller et al.
7301440November 2007Mollenkopf
7301508November 2007O'Loughlin et al.
7307357December 2007Kopp et al.
7307596December 2007West et al.
7308264December 2007Stern-Berkowitz et al.
7308370December 2007Mason, Jr. et al.
7309873December 2007Ishikawa
7310065December 2007Anguera Pros et al.
7310335December 2007Garcia-Luna-Aceves et al.
7311605December 2007Moser
7312686December 2007Bruno
7313087December 2007Patil et al.
7313312December 2007Kimball et al.
7315224January 2008Gurovich et al.
7315678January 2008Siegel
7318564January 2008Marshall et al.
7319717January 2008Zitting et al.
7321291January 2008Gidge et al.
7321707January 2008Noda et al.
7324046January 2008Wu et al.
7324817January 2008Iacono et al.
7329815February 2008Johnston et al.
7333064February 2008Timothy et al.
7333593February 2008Beamon et al.
7339466March 2008Mansfield et al.
7339897March 2008Larsson et al.
7340768March 2008Rosenberger et al.
7345623March 2008McEwan et al.
7346244March 2008Gowan et al.
7346359March 2008Damarla et al.
7353293April 2008Hipfinger et al.
7355560April 2008Nagai et al.
7358808April 2008Berkman et al.
7358921April 2008Snyder et al.
7369085May 2008Jacomb-Hood et al.
7369095May 2008Thudor et al.
7376191May 2008Melick et al.
7380272May 2008Sharp et al.
7381089June 2008Hosler, Sr.
7382232June 2008Gidge et al.
7383577June 2008Hrastar et al.
7388450June 2008Camiade et al.
7397422July 2008Tekawy et al.
7398946July 2008Marshall
7400304July 2008Lewis et al.
7403169July 2008Svensson et al.
7406337July 2008Kim et al.
7408426August 2008Broyde et al.
7408507August 2008Paek et al.
7408923August 2008Khan et al.
7410606August 2008Atkinson et al.
7417587August 2008Iskander et al.
7418178August 2008Kudou et al.
7418273August 2008Suyama et al.
7420474September 2008Elks et al.
7420525September 2008Colburn et al.
7423604September 2008Nagai et al.
7426554September 2008Kennedy et al.
7427927September 2008Borleske et al.
7430257September 2008Shattil et al.
7430932October 2008Mekhanoshin et al.
7443334October 2008Rees et al.
7444404October 2008Wetherall et al.
7446567November 2008Otsuka et al.
7450000November 2008Gidge et al.
7450001November 2008Berkman
7453352November 2008Kline et al.
7453393November 2008Duivenvoorden et al.
7456650November 2008Lee et al.
7459834December 2008Knowles et al.
7460834December 2008Johnson et al.
7463877December 2008Iwamura
7465879December 2008Glew et al.
7466225December 2008White, II et al.
7468657December 2008Yaney
7477285January 2009Johnson et al.
7479776January 2009Renken et al.
7479841January 2009Stenger et al.
7486247February 2009Ridgway et al.
7490275February 2009Zerbe et al.
7492317February 2009Tinsley et al.
7496674February 2009Jorgensen et al.
7498822March 2009Lee et al.
7502619March 2009Katz et al.
7504938March 2009Eiza et al.
7508834March 2009Berkman et al.
7509009March 2009Suzuki et al.
7509675March 2009Aaron et al.
7511662March 2009Mathews et al.
7512090March 2009Benitez Pelaez et al.
7515041April 2009Eisold et al.
7516487April 2009Szeto et al.
7518529April 2009O'Sullivan et al.
7518952April 2009Padden et al.
7519323April 2009Mohebbi et al.
7522115April 2009Waltman et al.
7522812April 2009Zitting
7525501April 2009Black et al.
7525504April 2009Song et al.
7531803May 2009Mittleman et al.
7532792May 2009Skovgaard et al.
7535867May 2009Kilfoyle et al.
7539381May 2009Li et al.
7541981June 2009Piskun et al.
7545818June 2009Chen et al.
7546214June 2009Rivers, Jr. et al.
7548212June 2009Chekroun et al.
7551921June 2009Petermann et al.
7554998June 2009Simonsson et al.
7555182June 2009Martin et al.
7555186June 2009De Montmorillon et al.
7555187June 2009Bickham et al.
7557563July 2009Cowan et al.
7561025July 2009Gerszberg et al.
7567154July 2009Elmore
7567740July 2009Bayindir et al.
7570137August 2009Kintis et al.
7570470August 2009Holley
7577398August 2009Tennant et al.
7580643August 2009Moore et al.
7581702September 2009Wheeler et al.
7583074September 2009Lynch et al.
7583233September 2009Goldberg et al.
7584470September 2009Barker et al.
7589630September 2009Drake et al.
7589686September 2009Balzovsky et al.
7590404September 2009Johnson
7591020September 2009Kammer et al.
7591792September 2009Bouton et al.
7593067September 2009Taguchi et al.
7596222September 2009Jonas et al.
7598844October 2009Corcoran et al.
7602333October 2009Hiramatsu et al.
7602815October 2009Houghton et al.
7605768October 2009Ebling et al.
7620370November 2009Barak et al.
7625131December 2009Zienkewicz et al.
7626489December 2009Berkman et al.
7626542December 2009Kober et al.
7627300December 2009Abramov et al.
7633442December 2009Lynch et al.
7634250December 2009Prasad et al.
7639201December 2009Marklein et al.
7640562December 2009Bouilloux-Lafont et al.
7640581December 2009Brenton et al.
7653363January 2010Karr et al.
RE41147February 2010Pang et al.
7656167February 2010McLean et al.
7656358February 2010Haziza et al.
7660244February 2010Kadaba et al.
7660252February 2010Huang et al.
7660328February 2010Oz et al.
7664117February 2010Lou et al.
7669049February 2010Wang et al.
7671701March 2010Radtke
7671820March 2010Tokoro et al.
7672271March 2010Lee et al.
7676679March 2010Weis et al.
7680478March 2010Willars et al.
7680516March 2010Lovberg et al.
7680561March 2010Rodgers et al.
7683848March 2010Musch et al.
7684383March 2010Thompson et al.
7693079April 2010Cerami et al.
7693162April 2010McKenna et al.
7693939April 2010Wu et al.
7697417April 2010Chen et al.
7701931April 2010Kajiwara
7705747April 2010Twitchell, Jr.
7710346May 2010Bloss et al.
7714536May 2010Silberg et al.
7714709May 2010Daniel et al.
7714725May 2010Medve et al.
7715672May 2010Dong et al.
7716660May 2010Mackay et al.
7724782May 2010Wang et al.
7728772June 2010Mortazawi et al.
7729285June 2010Yoon et al.
7733094June 2010Bright et al.
7734717June 2010Saarimaki et al.
7737903June 2010Rao et al.
7739402June 2010Graham et al.
7743403June 2010McCarty et al.
7747356June 2010Andarawis et al.
7747774June 2010Aaron et al.
7750244July 2010Melding et al.
7750763July 2010Pra.beta.mayer et al.
7751054July 2010Backes et al.
7760978July 2010Fishteyn et al.
7761079July 2010Mollenkopf et al.
7764943July 2010Radtke et al.
7773664August 2010Myers et al.
7782156August 2010Woods et al.
7783195August 2010Riggsby et al.
7786894August 2010Polk et al.
7786945August 2010Baldauf et al.
7786946August 2010Diaz et al.
7791549September 2010Clymer et al.
7792016September 2010Arai et al.
7795877September 2010Radtke et al.
7795994September 2010Radtke et al.
7796025September 2010Berkman et al.
7796122September 2010Shih et al.
7796890September 2010Johnson
7797367September 2010Girod et al.
7805029September 2010Bayindir et al.
7808441October 2010Parsche et al.
7809223October 2010Miyabe et al.
7812686October 2010Woods et al.
7812778October 2010Hasegawa et al.
7813344October 2010Cheswick
7817063October 2010Hawkins et al.
7825793November 2010Spillman et al.
7825867November 2010Tuttle et al.
7826602November 2010Hunyady et al.
7827610November 2010Wang et al.
7830228November 2010Evans et al.
7834270November 2010Zhu et al.
7835128November 2010Divan et al.
7835600November 2010Yap et al.
7843375November 2010Rennie et al.
7844081November 2010McMakin et al.
7848517December 2010Britz et al.
7852752December 2010Kano
7852837December 2010Au et al.
7853267December 2010Jensen et al.
7855612December 2010Zienkewicz et al.
7856007December 2010Corcoran et al.
7869391January 2011Lee et al.
7872610January 2011Motzer et al.
7872611January 2011Muller et al.
7873249January 2011Kachmar et al.
7876174January 2011Radtke et al.
7884285February 2011Spencer
7884648February 2011Broyde et al.
7885542February 2011Riggsby et al.
7889129February 2011Fox et al.
7889148February 2011Diaz et al.
7889149February 2011Peebles et al.
7890053February 2011Washiro
7893789February 2011Paynter et al.
7894770February 2011Washiro et al.
7898480March 2011Rebeiz et al.
7899403March 2011Aaron
7903918March 2011Bickham et al.
7903972March 2011Riggsby et al.
7906973March 2011Orr et al.
7907097March 2011Syed et al.
7915980March 2011Hardacker et al.
7916081March 2011Lakkis et al.
7928750April 2011Miller et al.
7929940April 2011Dianda et al.
7930750April 2011Gauvin et al.
7937699May 2011Schneider et al.
7940207May 2011Kienzle et al.
7940731May 2011Gao et al.
7956818June 2011Hsu et al.
7958120June 2011Muntz et al.
7961710June 2011Lee et al.
7962957June 2011Keohane et al.
7965842June 2011Whelan et al.
7970365June 2011Martin et al.
7970937June 2011Shuster et al.
7971053June 2011Gibson, Sr. et al.
7973296July 2011Quick et al.
7974387July 2011Lutz et al.
7983740July 2011Culver et al.
7986711July 2011Horvath et al.
7990146August 2011Lazar et al.
7990329August 2011Deng et al.
7991877August 2011Keohane et al.
7992014August 2011Langgood et al.
7994996August 2011Rebeiz et al.
7994999August 2011Maeda et al.
7997546August 2011Andersen et al.
8010116August 2011Scheinert
8013694September 2011Sagala et al.
8019288September 2011Yu et al.
8022885September 2011Smoyer et al.
8022887September 2011Zarnaghi et al.
8023410September 2011O'Neill et al.
8027391September 2011Matsubara et al.
8036207October 2011Chen et al.
8049576November 2011Broyde et al.
8054199November 2011Addy et al.
8059576November 2011Vavik et al.
8059593November 2011Shih et al.
8060308November 2011Breed et al.
8063832November 2011Weller et al.
8064744November 2011Atkins et al.
8064944November 2011Yun et al.
8065099November 2011Gibala et al.
8069483November 2011Matlock et al.
8072323December 2011Kodama et al.
8072386December 2011Lier et al.
8073810December 2011Maes
8077049December 2011Yaney et al.
8077113December 2011Renilson et al.
8081854December 2011Yoon et al.
8089356January 2012Moore et al.
8089404January 2012Nichols et al.
8089952January 2012Spade et al.
8090258January 2012DeLew et al.
8090379January 2012Lambert et al.
8094081January 2012Boone et al.
8094985January 2012Imamura et al.
8095093January 2012Takinami et al.
8098198January 2012Thiesen et al.
8102324January 2012Tuau et al.
8102779January 2012Kim et al.
8106749January 2012Ina et al.
8106849January 2012Suddath et al.
RE43163February 2012Anderson
8111148February 2012Parker et al.
8112649February 2012Potkonjak et al.
8116598February 2012Shutter et al.
8120488February 2012Bloy et al.
8121624February 2012Cai et al.
8125282February 2012Bao et al.
8125399February 2012McKinzie et al.
8126393February 2012Wu et al.
8129817March 2012Jou et al.
8131125March 2012Molin et al.
8131266March 2012Cai et al.
8132239March 2012Wahl
8134424March 2012Kato et al.
8134458March 2012Lund
8135050March 2012Stadler et al.
8140113March 2012Rofougaran et al.
8150311April 2012Hart et al.
8151306April 2012Rakib
8156520April 2012Casagrande et al.
8159316April 2012Miyazato et al.
8159342April 2012Medina, III et al.
8159385April 2012Farneth et al.
8159394April 2012Hayes et al.
8159742April 2012McKay et al.
8159933April 2012Henry
8159955April 2012Larsson et al.
8160064April 2012Kokernak et al.
8160530April 2012Corman et al.
8160825April 2012Roe, Jr. et al.
8164531April 2012Lier et al.
8171146May 2012Chen et al.
8172173May 2012Carlson et al.
8173943May 2012Vilo et al.
8175535May 2012Mu et al.
8175649May 2012Saban
8179787May 2012Knapp et al.
8180917May 2012Yan et al.
8184015May 2012Lilien et al.
8184059May 2012Bunch et al.
8184311May 2012Sakai et al.
8184523May 2012Belotserkovsky et al.
8185062May 2012Rofougaran et al.
8188855May 2012Sharma et al.
8199762June 2012Michelson et al.
8203501June 2012Kim et al.
8212635July 2012Miller, II et al.
8212722July 2012Ngo et al.
8213758July 2012Dong et al.
8218929July 2012Bickham et al.
8222919July 2012Broyde et al.
8222977July 2012Oyama et al.
8225379July 2012van de et al.
8233905July 2012Vaswani et al.
8237617August 2012Johnson et al.
8238824August 2012Washiro
8238840August 2012Iio et al.
8242358August 2012Park et al.
8243603August 2012Gossain et al.
8249028August 2012Porras et al.
8251307August 2012Goossen et al.
8253516August 2012Miller, II et al.
8255952August 2012Boylan, III et al.
8258743September 2012Tyler et al.
8259028September 2012Hills et al.
8264417September 2012Snow et al.
8269583September 2012Miller, II et al.
8284102October 2012Hayes et al.
8287323October 2012Kiesow et al.
8295301October 2012Yonge, III et al.
8300538October 2012Kim et al.
8300640October 2012Al-Banna et al.
8316228November 2012Winslow et al.
8316364November 2012Stein et al.
8324990December 2012Vouloumanos
8325034December 2012Moore et al.
8325636December 2012Binder
8325693December 2012Binder et al.
8330259December 2012Soler Castany et al.
8335596December 2012Raman et al.
8340438December 2012Anderson et al.
8343145January 2013Brannan et al.
8344829January 2013Miller, II et al.
8354970January 2013Armbrecht et al.
8359124January 2013Zhou et al.
8362775January 2013Speckner et al.
8363313January 2013Nakaguma et al.
8369667February 2013Rose et al.
8373095February 2013Huynh et al.
8373597February 2013Schadler et al.
8374821February 2013Rousselle et al.
8384600February 2013Huang et al.
8385978February 2013Leung et al.
8386198February 2013Lancaster
8390307March 2013Slupsky et al.
8390402March 2013Kunes et al.
8405567March 2013Park et al.
8406239March 2013Hurwitz et al.
8406593March 2013Molin et al.
8407687March 2013Moshir et al.
8412130April 2013Suematsu et al.
8414326April 2013Bowman
8415884April 2013Chen et al.
8428033April 2013Hettstedt et al.
8433168April 2013Filippov et al.
8433338April 2013Flynn et al.
8434103April 2013Tsuchida et al.
8437383May 2013Wiwel et al.
8452101May 2013Ishikawa et al.
8452555May 2013Hayward et al.
8457027June 2013Dougherty et al.
8458453June 2013Mahalingaiah et al.
8462063June 2013Gummalla et al.
8467363June 2013Lea et al.
8468244June 2013Redlich et al.
8471513June 2013Han
8472327June 2013DelRegno et al.
8484137July 2013Johnson et al.
8484511July 2013Tidwell et al.
8495718July 2013Han et al.
8497749July 2013Elmore
8503845August 2013Winzer et al.
8504135August 2013Bourqui et al.
8505057August 2013Rogers
8509114August 2013Szajdecki
8514980August 2013Kuhtz
8515383August 2013Prince et al.
8516129August 2013Skene et al.
8516470August 2013Joshi et al.
8516474August 2013Lamba et al.
8519892August 2013Ding et al.
8520578August 2013Rayment et al.
8520636August 2013Xu
8520931August 2013Tateno et al.
8528059September 2013Saluzzo et al.
8532023September 2013Buddhikot et al.
8532046September 2013Hu et al.
8532492September 2013Sadowski et al.
8536857September 2013Nero, Jr. et al.
8537068September 2013Call et al.
8537705September 2013Afkhamie et al.
8538428September 2013Bartlett et al.
8539540September 2013Zenoni
8539569September 2013Mansour
8542968September 2013Dong et al.
8545322October 2013George et al.
8548294October 2013Toge et al.
8553646October 2013Kumar
8561104October 2013Dow et al.
8561181October 2013Sobel et al.
8565568October 2013Bigot-Astruc et al.
8566058October 2013Pupalaikis et al.
8572247October 2013Larson et al.
8572639October 2013Ficco
8572661October 2013Strong et al.
8578076November 2013van der Linden et al.
8578486November 2013Lifliand et al.
8582502November 2013Conte et al.
8584195November 2013Sherlock et al.
8587490November 2013Niver et al.
8587492November 2013Runyon et al.
8588567November 2013Kamps et al.
8588840November 2013Truong et al.
8588991November 2013Forbes, Jr.
8593238November 2013Miller, II et al.
8594956November 2013McBee et al.
8595141November 2013Hao et al.
8599150December 2013Philipp
8600602December 2013Watson et al.
8604982December 2013Gummalla et al.
8604999December 2013Abumrad et al.
8605361December 2013Batchko et al.
8605579December 2013Abraham et al.
8612550December 2013Yoo et al.
8613020December 2013Knudson et al.
8615190December 2013Lu
8625547January 2014Miller et al.
8629811January 2014Gaynor et al.
8639260January 2014Fox et al.
8639390January 2014Tamarkin et al.
8639934January 2014Kruglick
8644219February 2014Nishizaka et al.
8653906February 2014Mahon et al.
8655396February 2014Malladi et al.
8656458February 2014Heffez et al.
8660526February 2014Heiderscheit et al.
8660698February 2014Phillips et al.
8665102March 2014Salewske et al.
8666553March 2014Phillips et al.
8670946March 2014Salazar et al.
8674630March 2014Cornelius et al.
8676186March 2014Niu
8680450March 2014Pritchard et al.
8680706March 2014Zyren et al.
8681463March 2014Franks et al.
8686911April 2014Kim et al.
8687650April 2014King
8688153April 2014Komori et al.
8699454April 2014Hapsari et al.
8699461April 2014Qian et al.
8705925April 2014Terada et al.
8706026April 2014Truong et al.
8707432April 2014Rathi et al.
8711538April 2014Woodworth et al.
8711732April 2014Johnson et al.
8711806April 2014Lim et al.
8711857April 2014Jackson et al.
8712200April 2014Abernathy et al.
8719938May 2014Demeter et al.
8723730May 2014Lu et al.
8724102May 2014Urban et al.
8729857May 2014Stahlin et al.
8731358May 2014Pare et al.
8732476May 2014Van et al.
8736502May 2014Mehr et al.
8737793May 2014Imamura et al.
8738318May 2014Spillane
8742997June 2014McPeak et al.
8743004June 2014Haziza
8749449June 2014Caldwell et al.
8750097June 2014Maenpaa et al.
8750664June 2014Huang et al.
8754852June 2014Lee et al.
8755659June 2014Imamura et al.
8760354June 2014Flannery et al.
8761792June 2014Sennett et al.
8763097June 2014Bhatnagar et al.
8766657July 2014DeJean et al.
8767071July 2014Marshall
8769622July 2014Chang et al.
8773312July 2014Diaz et al.
8780012July 2014Llombart Juan et al.
8782195July 2014Foti
8786284July 2014Sirigiri et al.
8786514July 2014Dickie et al.
8789091July 2014Eldering et al.
8792760July 2014Choi et al.
8792933July 2014Chen et al.
8793363July 2014Sater et al.
8793742July 2014Macrae et al.
8797207August 2014Kienzle et al.
8797848August 2014Kim et al.
8804667August 2014Wang
8806202August 2014Shoemake et al.
8810404August 2014Bertoncini et al.
8810421August 2014Deaver, Sr. et al.
8810468August 2014Cannon et al.
8811278August 2014Hori et al.
8811912August 2014Austin et al.
8812050August 2014Bencheikh et al.
8812154August 2014Vian et al.
8817741August 2014Shaheen
8824380September 2014Jetcheva et al.
8825239September 2014Cooper et al.
8829934September 2014Sellathamby et al.
8830112September 2014Buehler et al.
8831506September 2014Claret et al.
8836503September 2014Girod et al.
8836607September 2014Cook et al.
8839350September 2014Shapcott et al.
8847840September 2014Diaz et al.
8847846September 2014Diaz et al.
8856239October 2014Oliver et al.
8856530October 2014Lamberg et al.
8863245October 2014Abhyanker
8866691October 2014Montgomery et al.
8866695October 2014Jefferson et al.
8867226October 2014Colomb et al.
8867798October 2014Shuster
8872032October 2014Su et al.
8875224October 2014Gross et al.
8878740November 2014Coupland et al.
8880765November 2014Seal et al.
8881588November 2014Baer et al.
8885689November 2014Blasco Claret et al.
8886229November 2014Agrawal et al.
8887212November 2014Dua
8890759November 2014Pantea et al.
8893246November 2014El-Moussa et al.
8897215November 2014Hazani et al.
8897499November 2014Rekimoto
8897697November 2014Bennett
8901916December 2014Rodriguez et al.
8903214December 2014Alkeskjold
8907222December 2014Stranskky
8907845December 2014Jones
8908502December 2014Hayashitani
8908573December 2014Wang et al.
8913862December 2014Emmerich et al.
8917210December 2014Shamim et al.
8917215December 2014Pohl
8917964December 2014Blew et al.
8918108December 2014Van Heeswyk et al.
8918135December 2014Kang et al.
8922447December 2014Gao et al.
8925079December 2014Miyake et al.
8929841January 2015Rofougaran et al.
8934747January 2015Smith et al.
8937577January 2015Gerini et al.
8938144January 2015Hennink et al.
8938255January 2015Dalla et al.
8941912January 2015Ichii et al.
8947258February 2015Reid et al.
8948235February 2015Proctor, Jr. et al.
8948690February 2015Duerksen et al.
8952678February 2015Giboney et al.
8955051February 2015Marzii
8955075February 2015Smith et al.
8957818February 2015Chen et al.
8957821February 2015Matyas et al.
8958356February 2015Lu et al.
8958665February 2015Ziari et al.
8958812February 2015Weiguo
8958980February 2015Hagan et al.
8963790February 2015Brown et al.
8964433February 2015Hai-Maharsi
8966609February 2015Lee et al.
8968287March 2015Shroff et al.
8970438March 2015Hager et al.
8984113March 2015Li et al.
8989788March 2015Kim et al.
8994473March 2015Levi et al.
8994474March 2015Mahon et al.
8996188March 2015Frader-thompson et al.
8996728March 2015Cochinwala et al.
9000353April 2015Seo et al.
9001689April 2015Ponnampalam et al.
9001717April 2015Chun et al.
9003492April 2015Katar
9008208April 2015Khandani
9008513April 2015Kim et al.
9009460April 2015Chen
9013361April 2015Lam et al.
9014621April 2015Mohebbi
9015139April 2015Wong
9015467April 2015Buer
9019164April 2015Syed et al.
9019595April 2015Jain et al.
9019846April 2015Shetty et al.
9019892April 2015Zhou et al.
9020555April 2015Sheikh et al.
9021251April 2015Chawla
9021575April 2015Martini
RE45514May 2015Brown
9024831May 2015Wang et al.
9031725May 2015Diesposti et al.
9037516May 2015Abhyanker
9042245May 2015Tzannes et al.
9042812May 2015Bennett et al.
9054782June 2015Hunter et al.
9065172June 2015Lewry et al.
9065177June 2015Alexopoulos
9066224June 2015Schwengler
9070962June 2015Kobayashi
9070964June 2015Schuss
9079349July 2015Slafer
9082307July 2015Sharawi
9083083July 2015Hills et al.
9083425July 2015Moussouris et al.
9083581July 2015Addepalli et al.
9084124July 2015Nickel et al.
9092962July 2015Merrill et al.
9092963July 2015Fetzer et al.
9094407July 2015Matthieu
9094840July 2015Liu et al.
9098325August 2015Reddin
9099787August 2015Blech
9103864August 2015Ali
9105981August 2015Syed
9106617August 2015Kshirsagar et al.
9112281August 2015Bresciani et al.
9113347August 2015Henry
9119127August 2015Henry
9119179August 2015Firoiu et al.
9128941September 2015Shulman
9130641September 2015Mohebbi
9134945September 2015Husain
9137485September 2015Bar-Niv et al.
9142334September 2015Muto et al.
9143084September 2015Perez et al.
9143196September 2015Schwengler
9148186September 2015Murphy et al.
9154641October 2015Shaw
9157954October 2015Nickel
9158418October 2015Oda et al.
9158427October 2015Wang
9167535October 2015Christoffersson et al.
9171458October 2015Salter
9173217October 2015Teng et al.
9178282November 2015Mittleman et al.
9194930November 2015Pupalaikis
9201556December 2015Free et al.
9202371December 2015Jain
9203149December 2015Henderson et al.
9204112December 2015Pasteris et al.
9204418December 2015Siomina et al.
9207168December 2015Lovely et al.
9209902December 2015Willis, III et al.
9210192December 2015Pathuri et al.
9210586December 2015Catovic et al.
9213905December 2015Lange et al.
9219307December 2015Takahashi et al.
9219594December 2015Khlat
9225396December 2015Maltsev et al.
9229956January 2016Ke et al.
9235763January 2016Brown et al.
9240835January 2016Cune et al.
9244117January 2016Khan et al.
9246231January 2016Ju
9246334January 2016Lo et al.
9253588February 2016Schmidt et al.
9260244February 2016Cohn
9264204February 2016Seo et al.
9265078February 2016Lim et al.
9270013February 2016Ley
9271185February 2016Abdelmonem et al.
9276303March 2016Chang et al.
9276304March 2016Behan
9277331March 2016Chao et al.
9281564March 2016Vincent
9282144March 2016Tebay et al.
9285461March 2016Townley et al.
9287605March 2016Daughenbaugh et al.
9288844March 2016Akhavan-saraf et al.
9289177March 2016Samsudin et al.
9293798March 2016Ye
9293801March 2016Courtney et al.
9302770April 2016Cohen et al.
9306682April 2016Singh
9312929April 2016Forenza et al.
9315663April 2016Appleby
9319311April 2016Wang et al.
9324003April 2016France et al.
9324020April 2016Nazarov
9325067April 2016Ali et al.
9325516April 2016Frei et al.
9326316April 2016Yonge et al.
9334052May 2016Ubhi et al.
9337895May 2016Turner et al.
9338823May 2016Saban et al.
9346560May 2016Wang
9350063May 2016Herbsommer et al.
9351182May 2016Elliott et al.
9356358May 2016Hu et al.
9362629June 2016Miller et al.
9363333June 2016Basso et al.
9363690June 2016Suthar et al.
9363761June 2016Venkatraman
9366743June 2016Doshi et al.
9368275June 2016McBee et al.
9369177June 2016Hui et al.
9372228June 2016Gavin et al.
9379527June 2016Jean et al.
9379556June 2016Haensgen et al.
9380857July 2016Davis et al.
9391874July 2016Corti et al.
9393683July 2016Kimberlin et al.
9394716July 2016Butler et al.
9397380July 2016Kudela et al.
9400941July 2016Meier et al.
9401863July 2016Hui et al.
9404750August 2016Rios et al.
9413519August 2016Khoshnood et al.
9414126August 2016Zinevich
9417731August 2016Premont et al.
9419712August 2016Heidler
9421869August 2016Ananthanarayanan et al.
9422139August 2016Bialkowski et al.
9432478August 2016Gibbon et al.
9432865August 2016Jadunandan et al.
9439092September 2016Chukka et al.
9443417September 2016Wang
9458974October 2016Townsend, Jr. et al.
9459746October 2016Zarraga et al.
9461706October 2016Bennett et al.
9465397October 2016Forbes, Jr. et al.
9467219October 2016Vilhar
9467870October 2016Bennett
9476932October 2016Furse et al.
9478865October 2016Willis et al.
9479241October 2016Pabla
9479266October 2016Henry et al.
9479299October 2016Kim et al.
9479392October 2016Anderson et al.
9479535October 2016Cohen et al.
9490869November 2016Henry
9490913November 2016Berlin
9495037November 2016King-Smith
9496921November 2016Corum
9497572November 2016Britt et al.
9503170November 2016Vu
9503189November 2016Henry et al.
9509415November 2016Henry et al.
9510203November 2016Jactat et al.
9515367December 2016Herbsommer et al.
9544006January 2017Henry et al.
9577306February 2017Willis, III et al.
9635619April 2017Liu et al.
9653816May 2017Ferreri et al.
2001/0030789October 2001Jiang et al.
2001/0045914November 2001Bunker et al.
2002/0002040January 2002Kline et al.
2002/0008672January 2002Gothard et al.
2002/0011960January 2002Yuanzhu et al.
2002/0021716February 2002Terk et al.
2002/0024424February 2002Burns et al.
2002/0027481March 2002Fiedziuszko et al.
2002/0040439April 2002Kellum et al.
2002/0057223May 2002Hook et al.
2002/0061217May 2002Hillman et al.
2002/0069417June 2002Kliger et al.
2002/0076188June 2002Kimerling et al.
2002/0083194June 2002Bak et al.
2002/0091807July 2002Goodman et al.
2002/0099949July 2002Fries et al.
2002/0101852August 2002Say et al.
2002/0111997August 2002Herlihy et al.
2002/0156917October 2002Nye et al.
2002/0186694December 2002Mahajan et al.
2002/0197979December 2002Vanderveen et al.
2003/0002125January 2003Fuse et al.
2003/0002476January 2003Chung et al.
2003/0010528January 2003Niles
2003/0022694January 2003Olsen et al.
2003/0038753February 2003Mahon et al.
2003/0049003March 2003Ahmad et al.
2003/0054793March 2003Manis et al.
2003/0054811March 2003Han et al.
2003/0061346March 2003Pekary et al.
2003/0094976May 2003Miyashita et al.
2003/0095208May 2003Chouraqui et al.
2003/0134660July 2003Himmel et al.
2003/0137464July 2003Foti et al.
2003/0151548August 2003Kingsley et al.
2003/0152331August 2003Dair et al.
2003/0164794September 2003Haynes et al.
2003/0188308October 2003Kizuka
2003/0189974October 2003Ferry et al.
2003/0190110October 2003Kline et al.
2003/0193365October 2003Loheit et al.
2003/0202756October 2003Hurley et al.
2003/0210197November 2003Cencich et al.
2003/0224784December 2003Hunt et al.
2004/0005039January 2004White et al.
2004/0015725January 2004Boneh et al.
2004/0023640February 2004Ballai et al.
2004/0024913February 2004Ikeda et al.
2004/0037566February 2004Willebrand et al.
2004/0048596March 2004Wyrzykowska et al.
2004/0054425March 2004Elmore
2004/0084582May 2004Kralic et al.
2004/0085153May 2004Fukunaga et al.
2004/0090312May 2004Manis et al.
2004/0091032May 2004Duchi et al.
2004/0100343May 2004Tsu et al.
2004/0104410June 2004Gilbert et al.
2004/0108963June 2004Clymer et al.
2004/0109608June 2004Love et al.
2004/0113756June 2004Mollenkopf et al.
2004/0113757June 2004White, II et al.
2004/0119564June 2004Itoh et al.
2004/0131310July 2004Walker et al.
2004/0163135August 2004Giaccherini et al.
2004/0165669August 2004Otsuka et al.
2004/0169572September 2004Elmore et al.
2004/0196784October 2004Larsson et al.
2004/0198228October 2004Raghothaman et al.
2004/0208591October 2004Willebrand et al.
2004/0212481October 2004Abraham et al.
2004/0213147October 2004Wiese et al.
2004/0213189October 2004Alspaugh et al.
2004/0213294October 2004Hughes et al.
2004/0242185December 2004Lee et al.
2004/0250069December 2004Kosamo et al.
2004/0266332December 2004Lang et al.
2005/0002408January 2005Lee et al.
2005/0005854January 2005Suzuki et al.
2005/0017825January 2005Hansen
2005/0031267February 2005Sumimoto et al.
2005/0046511March 2005Stenberg et al.
2005/0063422March 2005Lazar et al.
2005/0068223March 2005Vavik et al.
2005/0069321March 2005Sullivan et al.
2005/0074208April 2005Badcock et al.
2005/0097396May 2005Wood
2005/0102185May 2005Barker et al.
2005/0111533May 2005Berkman et al.
2005/0141808June 2005Cheben et al.
2005/0143868June 2005Whelan et al.
2005/0151659July 2005Donovan et al.
2005/0159187July 2005Mendolia et al.
2005/0164666July 2005Lang et al.
2005/0168326August 2005White et al.
2005/0169056August 2005Berkman
2005/0169401August 2005Abraham et al.
2005/0175113August 2005Okuyama et al.
2005/0177463August 2005Crutchfield et al.
2005/0190101September 2005Hiramatsu et al.
2005/0208949September 2005Chiueh et al.
2005/0212626September 2005Takamatsu et al.
2005/0219126October 2005Rebeiz et al.
2005/0219135October 2005Lee et al.
2005/0220180October 2005Barlev
2005/0226353October 2005Gebara et al.
2005/0249245November 2005Hazani et al.
2005/0258920November 2005Elmore
2006/0034724February 2006Hamano et al.
2006/0038660February 2006Doumuki et al.
2006/0053486March 2006Wesinger et al.
2006/0071776April 2006White et al.
2006/0077906April 2006Maegawa et al.
2006/0082516April 2006Strickland et al.
2006/0085813April 2006Giraldin et al.
2006/0094439May 2006Christian et al.
2006/0106741May 2006Janarthanan et al.
2006/0111047May 2006Louberg et al.
2006/0113425June 2006Rader et al.
2006/0114925June 2006Gerszberg et al.
2006/0119528June 2006Bhattacharyya et al.
2006/0120399June 2006Claret et al.
2006/0128322June 2006Igarashi et al.
2006/0132380June 2006Imai et al.
2006/0153878July 2006Savarino et al.
2006/0172781August 2006Mohebbi et al.
2006/0176124August 2006Mansour et al.
2006/0181394August 2006Clarke et al.
2006/0187023August 2006Iwamura et al.
2006/0192672August 2006Gidge et al.
2006/0220833October 2006Berkman et al.
2006/0221995October 2006Berkman et al.
2006/0232493October 2006Huang et al.
2006/0238347October 2006Parkinson et al.
2006/0239501October 2006Petrovic et al.
2006/0244672November 2006Avakian et al.
2006/0249622November 2006Steele et al.
2006/0255930November 2006Berkman et al.
2006/0286927December 2006Berkman et al.
2007/0002771January 2007Berkman et al.
2007/0022475January 2007Rossi et al.
2007/0025265February 2007Porras et al.
2007/0025386February 2007Riedel et al.
2007/0040628February 2007Kanno et al.
2007/0041464February 2007Kim et al.
2007/0041554February 2007Newman
2007/0054622March 2007Berkman
2007/0063914March 2007Becker et al.
2007/0090185April 2007Lewkowitz et al.
2007/0103333May 2007Michalski et al.
2007/0105508May 2007Tong et al.
2007/0135044June 2007Rhodes et al.
2007/0144779June 2007Vicente et al.
2007/0164908July 2007Turchinetz et al.
2007/0185621August 2007Gilmore et al.
2007/0189182August 2007Berkman et al.
2007/0201540August 2007Berkman et al.
2007/0202913August 2007Ban et al.
2007/0211689September 2007Campero et al.
2007/0211786September 2007Shattil et al.
2007/0216596September 2007Lewis et al.
2007/0223381September 2007Radtke et al.
2007/0226779September 2007Yokomitsu et al.
2007/0229184October 2007Liu et al.
2007/0229231October 2007Hurwitz et al.
2007/0252998November 2007Berthold et al.
2007/0257858November 2007Liu et al.
2007/0258484November 2007Tolaio et al.
2007/0268124November 2007Berkman et al.
2007/0268846November 2007Proctor et al.
2007/0300280December 2007Turner et al.
2008/0002652January 2008Gupta et al.
2008/0003872January 2008Chen et al.
2008/0007416January 2008Cern et al.
2008/0008116January 2008Buga et al.
2008/0043655February 2008Lee et al.
2008/0055149March 2008Rees et al.
2008/0060832March 2008Razavi et al.
2008/0064331March 2008Washiro et al.
2008/0077336March 2008Fernandes et al.
2008/0080389April 2008Hart et al.
2008/0084937April 2008Barthold et al.
2008/0094298April 2008Kralovec et al.
2008/0101798May 2008Healey et al.
2008/0120667May 2008Zaltsman
2008/0122723May 2008Rofougaran et al.
2008/0130639June 2008Costa-Requena et al.
2008/0133922June 2008Williams et al.
2008/0143491June 2008Deaver et al.
2008/0150790June 2008Voigtlaender et al.
2008/0151916June 2008Jetcheva et al.
2008/0153416June 2008Washiro et al.
2008/0177678July 2008Di Martini et al.
2008/0191851August 2008Koga et al.
2008/0211727September 2008Elmore
2008/0238796October 2008Rofougaran et al.
2008/0247716October 2008Thomas et al.
2008/0252522October 2008Asbridge et al.
2008/0253723October 2008Stokes et al.
2008/0255782October 2008Bilac et al.
2008/0258993October 2008Gummalla et al.
2008/0266060October 2008Takei et al.
2008/0267076October 2008Laperi et al.
2008/0279199November 2008Park et al.
2008/0280574November 2008Rofougaran et al.
2008/0313691December 2008Cholas
2009/0002137January 2009Radtke et al.
2009/0007189January 2009Gutknecht
2009/0007190January 2009Weber et al.
2009/0007194January 2009Brady, Jr. et al.
2009/0009408January 2009Rofougaran et al.
2009/0015239January 2009Georgiou et al.
2009/0054056February 2009Gil et al.
2009/0054737February 2009Magar et al.
2009/0061940March 2009Scheinert et al.
2009/0067441March 2009Ansari et al.
2009/0079660March 2009Elmore
2009/0085726April 2009Radtke et al.
2009/0088907April 2009Lewis et al.
2009/0093267April 2009Ariyur et al.
2009/0109981April 2009Keselman
2009/0125351May 2009Davis, Jr. et al.
2009/0129301May 2009Belimpasakis et al.
2009/0135848May 2009Chan et al.
2009/0138931May 2009Lin et al.
2009/0140852June 2009Stolarczyk et al.
2009/0144417June 2009Kisel et al.
2009/0171780July 2009Aldrey et al.
2009/0175195July 2009Macauley et al.
2009/0181664July 2009Kuruvilla et al.
2009/0201133August 2009Bruns et al.
2009/0202020August 2009Hafeez et al.
2009/0210901August 2009Hawkins et al.
2009/0212938August 2009Swaim et al.
2009/0250449October 2009Petrenko et al.
2009/0254971October 2009Herz et al.
2009/0258652October 2009Lambert et al.
2009/0284435November 2009Elmore et al.
2009/0286482November 2009Gorokhov et al.
2009/0289863November 2009Lier et al.
2009/0304124December 2009Graef et al.
2009/0311960December 2009Farahani et al.
2009/0315668December 2009Leete, III et al.
2009/0320058December 2009Wehmeyer et al.
2009/0325479December 2009Chakrabarti et al.
2009/0325628December 2009Becker et al.
2010/0002618January 2010Eichinger et al.
2010/0002731January 2010Kimura et al.
2010/0013696January 2010Schmitt et al.
2010/0026607February 2010Imai et al.
2010/0039339February 2010Kuroda et al.
2010/0045447February 2010Mollenkopf et al.
2010/0052799March 2010Watanabe et al.
2010/0053019March 2010Ikawa et al.
2010/0057894March 2010Glasser
2010/0080203April 2010Reynolds et al.
2010/0085036April 2010Banting et al.
2010/0090887April 2010Cooper et al.
2010/0091712April 2010Lu et al.
2010/0100918April 2010Egan, Jr. et al.
2010/0111521May 2010Kim et al.
2010/0119234May 2010Suematsu et al.
2010/0121945May 2010Gerber et al.
2010/0127848May 2010Mustapha et al.
2010/0141527June 2010Lalezari et al.
2010/0142435June 2010Kim et al.
2010/0150215June 2010Black et al.
2010/0153990June 2010Ress et al.
2010/0169937July 2010Atwal et al.
2010/0175080July 2010Yuen et al.
2010/0176894July 2010Tahara et al.
2010/0177894July 2010Yasuma et al.
2010/0185614July 2010O'Brien et al.
2010/0201313August 2010Vorenkamp et al.
2010/0214183August 2010Stoneback et al.
2010/0214185August 2010Sammoura et al.
2010/0220024September 2010Snow et al.
2010/0224732September 2010Olson et al.
2010/0225426September 2010Unger et al.
2010/0232539September 2010Han et al.
2010/0243633September 2010Huynh et al.
2010/0253450October 2010Kim et al.
2010/0256955October 2010Pupalaikis et al.
2010/0265877October 2010Foxworthy et al.
2010/0266063October 2010Harel et al.
2010/0283693November 2010Xie et al.
2010/0284446November 2010Mu et al.
2010/0319068December 2010Abbadessa et al.
2010/0327880December 2010Stein et al.
2011/0018704January 2011Burrows et al.
2011/0040861February 2011Van Der Merwe et al.
2011/0042120February 2011Otsuka et al.
2011/0043051February 2011Meskens et al.
2011/0053498March 2011Nogueira-Nine
2011/0068893March 2011Lahiri et al.
2011/0068988March 2011Monte et al.
2011/0080301April 2011Chang et al.
2011/0083399April 2011Lettkeman et al.
2011/0103274May 2011Vavik et al.
2011/0107364May 2011Lajoie et al.
2011/0109499May 2011Kienzle et al.
2011/0109936May 2011Coffee et al.
2011/0110404May 2011Washiro
2011/0118888May 2011White et al.
2011/0130135June 2011Trigui et al.
2011/0132658June 2011Miller, II et al.
2011/0133865June 2011Miller, II et al.
2011/0133867June 2011Miller, II et al.
2011/0136432June 2011Miller, II et al.
2011/0140911June 2011Pant et al.
2011/0141555June 2011Fermann et al.
2011/0143673June 2011Landesman et al.
2011/0148578June 2011Aloi et al.
2011/0148687June 2011Wright et al.
2011/0164514July 2011Afkhamie et al.
2011/0165847July 2011Kawasaki et al.
2011/0169336July 2011Yerazunis et al.
2011/0172000July 2011Quigley et al.
2011/0173447July 2011Zhang et al.
2011/0182174July 2011Pi et al.
2011/0187578August 2011Farneth et al.
2011/0199265August 2011Lin et al.
2011/0201269August 2011Hobbs et al.
2011/0208450August 2011Salka et al.
2011/0214176September 2011Burch et al.
2011/0219402September 2011Candelore et al.
2011/0220394September 2011Szylakowski et al.
2011/0225046September 2011Eldering et al.
2011/0228814September 2011Washiro et al.
2011/0235536September 2011Nishizaka et al.
2011/0268085November 2011Barany et al.
2011/0274396November 2011Nakajima et al.
2011/0286506November 2011Libby et al.
2011/0291878December 2011McLaughlin et al.
2011/0294509December 2011Kim et al.
2011/0311231December 2011Ridgway et al.
2011/0316645December 2011Takeuchi et al.
2012/0002973January 2012Bruzzi et al.
2012/0015382January 2012Weitz et al.
2012/0015654January 2012Palanki et al.
2012/0019420January 2012Caimi et al.
2012/0019427January 2012Ishikawa et al.
2012/0038520February 2012Cornwell et al.
2012/0039366February 2012Wood et al.
2012/0046891February 2012Yaney et al.
2012/0054571March 2012Howard et al.
2012/0068903March 2012Thevenard et al.
2012/0077485March 2012Shin et al.
2012/0078452March 2012Daum et al.
2012/0084807April 2012Thompson et al.
2012/0091820April 2012Campanella et al.
2012/0092161April 2012West et al.
2012/0093078April 2012Perlman et al.
2012/0102568April 2012Tarbotton et al.
2012/0105246May 2012Sexton et al.
2012/0105637May 2012Yousefi et al.
2012/0109545May 2012Meynardi et al.
2012/0109566May 2012Adamian et al.
2012/0117584May 2012Gordon
2012/0129566May 2012Lee et al.
2012/0133373May 2012Ali et al.
2012/0137332May 2012Kumar et al.
2012/0144420June 2012Del Sordo et al.
2012/0146861June 2012Armbrecht et al.
2012/0153087June 2012Collette et al.
2012/0154239June 2012Bar-Sade et al.
2012/0161543June 2012Reuven et al.
2012/0176906July 2012Hartenstein et al.
2012/0181258July 2012Shan et al.
2012/0190386July 2012Anderson
2012/0197558August 2012Henig et al.
2012/0201145August 2012Ree et al.
2012/0214538August 2012Kim et al.
2012/0224807September 2012Winzer et al.
2012/0226394September 2012Marcus et al.
2012/0235864September 2012Lu et al.
2012/0235881September 2012Pan et al.
2012/0250534October 2012Langer et al.
2012/0250752October 2012McHann et al.
2012/0263152October 2012Fischer et al.
2012/0267863October 2012Kiest et al.
2012/0268340October 2012Capozzoli et al.
2012/0270507October 2012Qin et al.
2012/0272741November 2012Xiao et al.
2012/0274528November 2012McMahon et al.
2012/0287922November 2012Heck et al.
2012/0299671November 2012Ikeda et al.
2012/0304294November 2012Fujiwara et al.
2012/0306587December 2012Strid et al.
2012/0306708December 2012Henderson et al.
2012/0313895December 2012Haroun et al.
2012/0319903December 2012Huseth et al.
2012/0322380December 2012Nannarone et al.
2012/0322492December 2012Koo et al.
2012/0324018December 2012Metcalf et al.
2012/0327908December 2012Gupta et al.
2012/0329523December 2012Stewart et al.
2012/0330756December 2012Morris et al.
2013/0002409January 2013Molina et al.
2013/0003876January 2013Bennett
2013/0010679January 2013Ma et al.
2013/0015922January 2013Liu et al.
2013/0016022January 2013Heiks et al.
2013/0023302January 2013Sivanesan et al.
2013/0039624February 2013Scherer et al.
2013/0064178March 2013Cs et al.
2013/0064311March 2013Turner et al.
2013/0070621March 2013Marzetta et al.
2013/0077612March 2013Khorami et al.
2013/0077664March 2013Lee et al.
2013/0080290March 2013Kamm
2013/0086639April 2013Sondhi et al.
2013/0093638April 2013Shoemaker et al.
2013/0095875April 2013Reuven et al.
2013/0108206May 2013Sasaoka et al.
2013/0109317May 2013Kikuchi et al.
2013/0117852May 2013Stute et al.
2013/0120548May 2013Li et al.
2013/0122828May 2013Choi et al.
2013/0124365May 2013Pradeep
2013/0127678May 2013Chandler et al.
2013/0136410May 2013Sasaoka et al.
2013/0144750June 2013Brown
2013/0148194June 2013Altug et al.
2013/0159153June 2013Lau et al.
2013/0159856June 2013Ferren
2013/0160122June 2013Choi et al.
2013/0162490June 2013Blech et al.
2013/0166690June 2013Shatzkamer et al.
2013/0169499July 2013Lin et al.
2013/0173807July 2013De Groot et al.
2013/0178998July 2013Gadiraju et al.
2013/0182790July 2013Jalali et al.
2013/0182804July 2013Yutaka et al.
2013/0185552July 2013Steer et al.
2013/0187636July 2013Kast et al.
2013/0191052July 2013Fernandez et al.
2013/0201006August 2013Kummetz et al.
2013/0201904August 2013Toskala et al.
2013/0205370August 2013Kalgi et al.
2013/0207681August 2013Slupsky et al.
2013/0207859August 2013Legay et al.
2013/0219308August 2013Britton et al.
2013/0230235September 2013Tateno et al.
2013/0234904September 2013Blech et al.
2013/0234961September 2013Garfinkel et al.
2013/0235845September 2013Kovvali et al.
2013/0235871September 2013Brzozowski et al.
2013/0241726September 2013Hunter et al.
2013/0262656October 2013Cao et al.
2013/0262857October 2013Neuman et al.
2013/0263263October 2013Narkolayev et al.
2013/0265732October 2013Herbsommer et al.
2013/0266026October 2013McCormack et al.
2013/0268414October 2013Lehtiniemi
2013/0271349October 2013Wright et al.
2013/0278464October 2013Xia et al.
2013/0279523October 2013Denney et al.
2013/0279561October 2013Jin et al.
2013/0279868October 2013Zhang et al.
2013/0279914October 2013Brooks et al.
2013/0285864October 2013Clymer et al.
2013/0303089November 2013Wang et al.
2013/0305369November 2013Karta et al.
2013/0306351November 2013Lambert et al.
2013/0307645November 2013Mita et al.
2013/0311661November 2013McPhee
2013/0314182November 2013Takeda et al.
2013/0321225December 2013Pettus et al.
2013/0326063December 2013Burch et al.
2013/0326494December 2013Nunez et al.
2013/0330050December 2013Yang et al.
2013/0335165December 2013Arnold et al.
2013/0336370December 2013Jovanovic et al.
2013/0336418December 2013Tomeba et al.
2013/0341094December 2013Taherian et al.
2013/0342287December 2013Randall et al.
2013/0343213December 2013Reynolds et al.
2013/0343351December 2013Sambhwani et al.
2014/0003394January 2014Rubin et al.
2014/0003775January 2014Ko et al.
2014/0007076January 2014Kim et al.
2014/0009270January 2014Yamazaki et al.
2014/0009822January 2014Dong et al.
2014/0015705January 2014Ebihara
2014/0019576January 2014Lobo et al.
2014/0026170January 2014Francisco et al.
2014/0028184January 2014Voronin et al.
2014/0028190January 2014Voronin et al.
2014/0028532January 2014Ehrenberg et al.
2014/0032005January 2014Iwamura
2014/0036694February 2014Courtice et al.
2014/0041925February 2014Davis et al.
2014/0043189February 2014Lee et al.
2014/0043977February 2014Wiley et al.
2014/0044139February 2014Dong et al.
2014/0050212February 2014Braz et al.
2014/0052810February 2014Osorio et al.
2014/0056130February 2014Grayson et al.
2014/0057576February 2014Monte et al.
2014/0062784March 2014Rison et al.
2014/0071818March 2014Wang et al.
2014/0072064March 2014Lemson et al.
2014/0072299March 2014Stapleton et al.
2014/0077995March 2014Artemenko et al.
2014/0086080March 2014Hui et al.
2014/0086152March 2014Bontu et al.
2014/0102743April 2014Doneker et al.
2014/0112184April 2014Chai
2014/0114635April 2014Sato et al.
2014/0124236May 2014Vu et al.
2014/0126914May 2014Berlin et al.
2014/0130111May 2014Nulty et al.
2014/0132728May 2014Verano et al.
2014/0139375May 2014Faragher et al.
2014/0143055May 2014Johnson
2014/0146902May 2014Liu et al.
2014/0148107May 2014Maltsev et al.
2014/0155054June 2014Henry et al.
2014/0165145June 2014Baentsch et al.
2014/0169186June 2014Zhu et al.
2014/0177692June 2014Yu et al.
2014/0179302June 2014Polehn et al.
2014/0189677July 2014Curzi et al.
2014/0189732July 2014Shkedi et al.
2014/0191913July 2014Ge et al.
2014/0204000July 2014Sato et al.
2014/0204754July 2014Jeong et al.
2014/0207844July 2014Mayo et al.
2014/0208272July 2014Vats et al.
2014/0211883July 2014Chai et al.
2014/0222997August 2014Mermoud et al.
2014/0223527August 2014Bortz et al.
2014/0225129August 2014Inoue et al.
2014/0227905August 2014Knott et al.
2014/0227966August 2014Artemenko et al.
2014/0233900August 2014Hugonnot et al.
2014/0241718August 2014Jiang et al.
2014/0254516September 2014Lee et al.
2014/0254896September 2014Zhou et al.
2014/0254979September 2014Zhang et al.
2014/0266946September 2014Stevenson et al.
2014/0266953September 2014Yen et al.
2014/0267700September 2014Wang et al.
2014/0269260September 2014Xue
2014/0269691September 2014Xue et al.
2014/0269972September 2014Rada et al.
2014/0273873September 2014Huynh et al.
2014/0285277September 2014Herbsommer
2014/0285293September 2014Schuppener et al.
2014/0285294September 2014Haroun et al.
2014/0285373September 2014Kuwahara et al.
2014/0285389September 2014Fakharzadeh et al.
2014/0286189September 2014Kang et al.
2014/0286235September 2014Chang et al.
2014/0286284September 2014Lim et al.
2014/0287702September 2014Schuppener et al.
2014/0299349October 2014Yamaguchi et al.
2014/0304498October 2014Gonuguntla et al.
2014/0317229October 2014Hughes et al.
2014/0320364October 2014Gu et al.
2014/0321273October 2014Morrill et al.
2014/0325594October 2014Klein et al.
2014/0334773November 2014Mathai et al.
2014/0334789November 2014Matsuo et al.
2014/0340271November 2014Petkov et al.
2014/0343883November 2014Libby et al.
2014/0349696November 2014Hyde et al.
2014/0351571November 2014Jacobs
2014/0355525December 2014Willis, III et al.
2014/0355989December 2014Finckelstein
2014/0357269December 2014Zhou et al.
2014/0359275December 2014Murugesan et al.
2014/0362374December 2014Santori
2014/0362694December 2014Rodriques
2014/0368301December 2014Herbsommer et al.
2014/0369430December 2014Parnell
2014/0372068December 2014Seto et al.
2014/0373053December 2014Leley et al.
2014/0376655December 2014Ruan et al.
2015/0008996January 2015Jessup et al.
2015/0009089January 2015Pesa
2015/0016260January 2015Chow et al.
2015/0017473January 2015Verhoeven et al.
2015/0022399January 2015Clymer et al.
2015/0026460January 2015Walton
2015/0029065January 2015Cheng
2015/0036610February 2015Kim et al.
2015/0042526February 2015Zeine
2015/0048238February 2015Kawai
2015/0049998February 2015Dumais
2015/0061859March 2015Matsuoka et al.
2015/0065166March 2015Ward et al.
2015/0070231March 2015Park et al.
2015/0071594March 2015Register
2015/0073594March 2015Trujillo et al.
2015/0077740March 2015Fuse
2015/0078756March 2015Soto et al.
2015/0084660March 2015Knierim et al.
2015/0084703March 2015Sanduleanu
2015/0084814March 2015Rojanski et al.
2015/0091650April 2015Nobbe
2015/0094104April 2015Wilmhoff et al.
2015/0098387April 2015Garg et al.
2015/0099555April 2015Krishnaswamy et al.
2015/0102972April 2015Scire-Scappuzzo et al.
2015/0103685April 2015Butchko et al.
2015/0104005April 2015Holman
2015/0105115April 2015Hata et al.
2015/0109178April 2015Hyde et al.
2015/0116154April 2015Artemenko
2015/0122886May 2015Michael
2015/0126107May 2015Bennett et al.
2015/0130675May 2015Parsche
2015/0138022May 2015Takahashi
2015/0138144May 2015Tanabe
2015/0153248June 2015Hayward et al.
2015/0156266June 2015Gupta
2015/0162988June 2015Henry et al.
2015/0171517June 2015Grandfield et al.
2015/0171522June 2015Liu et al.
2015/0172036June 2015Katar et al.
2015/0181449June 2015Didenko et al.
2015/0185425July 2015Gundel
2015/0195349July 2015Cardamore
2015/0195719July 2015Rahman
2015/0201228July 2015Hasek
2015/0207527July 2015Eliaz et al.
2015/0214615July 2015Patel et al.
2015/0215268July 2015Dinha
2015/0223078August 2015Bennett et al.
2015/0223113August 2015Matsunaga
2015/0223160August 2015Ho
2015/0230109August 2015Turner et al.
2015/0234122August 2015Andle
2015/0236778August 2015Jalali
2015/0236779August 2015Jalali
2015/0237519August 2015Ghai
2015/0249965September 2015Dussmann et al.
2015/0263424September 2015Sanford
2015/0266436September 2015Erb
2015/0271830September 2015Shin et al.
2015/0276577October 2015Ruege et al.
2015/0277569October 2015Sprenger
2015/0280328October 2015Sanford et al.
2015/0284079October 2015Matsuda
2015/0288532October 2015Veyseh et al.
2015/0289247October 2015Liu et al.
2015/0303892October 2015Desclos
2015/0304045October 2015Henry et al.
2015/0304869October 2015Johnson et al.
2015/0311951October 2015Hariz
2015/0312774October 2015Lau
2015/0318610November 2015Lee et al.
2015/0323948November 2015Jeong
2015/0325913November 2015Vagman
2015/0326274November 2015Flood
2015/0326287November 2015Kazmi et al.
2015/0333386November 2015Kaneda et al.
2015/0333804November 2015Yang et al.
2015/0334769November 2015Kim et al.
2015/0339912November 2015Farrand et al.
2015/0344136December 2015Dahlstrom
2015/0349415December 2015Iwanaka
2015/0356482December 2015Whipple et al.
2015/0356848December 2015Hatch
2015/0369660December 2015Yu
2015/0370251December 2015Siegel et al.
2015/0373557December 2015Bennett et al.
2015/0380814December 2015Boutayeb et al.
2015/0382208December 2015Elliott et al.
2015/0382363December 2015Wang et al.
2016/0006129January 2016Haziza
2016/0012460January 2016Kruglick
2016/0014749January 2016Kang et al.
2016/0021545January 2016Shaw
2016/0026301January 2016Zhou et al.
2016/0029009January 2016Lu et al.
2016/0038074February 2016Brown et al.
2016/0043478February 2016Hartenstein
2016/0044705February 2016Gao
2016/0050028February 2016Henry et al.
2016/0056543February 2016Kwiatkowski
2016/0063642March 2016Luciani et al.
2016/0064794March 2016Henry et al.
2016/0065252March 2016Preschutti
2016/0065335March 2016Koo et al.
2016/0066191March 2016Li
2016/0068265March 2016Hoareau et al.
2016/0068277March 2016Manitta
2016/0069934March 2016Saxby et al.
2016/0069935March 2016Kreikebaum et al.
2016/0070265March 2016Liu et al.
2016/0072173March 2016Herbsommer et al.
2016/0072191March 2016Iwai
2016/0072287March 2016Jia
2016/0079769March 2016Corum et al.
2016/0079771March 2016Corum
2016/0079809March 2016Corum et al.
2016/0080035March 2016Fuchs et al.
2016/0080839March 2016Fuchs et al.
2016/0082460March 2016McMaster et al.
2016/0087344March 2016Artemenko et al.
2016/0088498March 2016Sharawi
2016/0094420March 2016Clemm et al.
2016/0094879March 2016Gerszberg et al.
2016/0099749April 2016Bennett et al.
2016/0100324April 2016Henry et al.
2016/0103199April 2016Rappaport
2016/0105218April 2016Henry et al.
2016/0105233April 2016Jalali
2016/0105239April 2016Henry et al.
2016/0105255April 2016Henry et al.
2016/0111890April 2016Corum et al.
2016/0112092April 2016Henry et al.
2016/0112093April 2016Barzegar
2016/0112094April 2016Stuckman et al.
2016/0112115April 2016Henry et al.
2016/0112132April 2016Henry et al.
2016/0112133April 2016Henry et al.
2016/0112135April 2016Henry et al.
2016/0112263April 2016Henry et al.
2016/0116914April 2016Mucci
2016/0118717April 2016Britz et al.
2016/0124071May 2016Baxley et al.
2016/0127931May 2016Baxley et al.
2016/0131347May 2016Hill et al.
2016/0134006May 2016Ness et al.
2016/0135132May 2016Donepudi et al.
2016/0135184May 2016Zavadsky et al.
2016/0137311May 2016Peverill et al.
2016/0139731May 2016Kim
2016/0149312May 2016Henry et al.
2016/0149614May 2016Barzegar
2016/0149636May 2016Gerszberg et al.
2016/0149665May 2016Henry et al.
2016/0149731May 2016Henry et al.
2016/0149753May 2016Gerszberg et al.
2016/0150427May 2016Ramanath
2016/0153938June 2016Balasubramaniam et al.
2016/0164571June 2016Bennett et al.
2016/0164573June 2016Birk et al.
2016/0165472June 2016Gopalakrishnan et al.
2016/0165478June 2016Yao et al.
2016/0174040June 2016Roberts et al.
2016/0179134June 2016Ryu
2016/0181701June 2016Sangaran et al.
2016/0182161June 2016Barzegar
2016/0182981June 2016Minarik et al.
2016/0188291June 2016Vilermo et al.
2016/0189101June 2016Kantor et al.
2016/0197392July 2016Henry et al.
2016/0197409July 2016Henry et al.
2016/0197630July 2016Kawasaki
2016/0197642July 2016Henry et al.
2016/0207627July 2016Hoareau et al.
2016/0211566July 2016Kikuchi et al.
2016/0212065July 2016To et al.
2016/0212641July 2016Kong et al.
2016/0214717July 2016De Silva
2016/0218407July 2016Henry et al.
2016/0218437July 2016Guntupalli
2016/0221039August 2016Fuchs et al.
2016/0224235August 2016Forsstrom
2016/0226681August 2016Henry et al.
2016/0244165August 2016Patrick et al.
2016/0248149August 2016Kim et al.
2016/0248165August 2016Henry
2016/0248509August 2016Henry
2016/0249233August 2016Murray
2016/0252970September 2016Dahl
2016/0261309September 2016Henry
2016/0261310September 2016Fuchs et al.
2016/0269156September 2016Barzegar et al.
2016/0276725September 2016Barnickel et al.
2016/0277939September 2016Bertrand et al.
2016/0285508September 2016Bennett et al.
2016/0285512September 2016Henry et al.
2016/0294444October 2016Gerszberg et al.
2016/0294517October 2016Barzegar et al.
2016/0295431October 2016Henry et al.
2016/0306361October 2016Shalom et al.
2016/0315659October 2016Henry
2016/0315660October 2016Henry
2016/0315661October 2016Henry
2016/0315662October 2016Henry
2016/0322691November 2016Bennett et al.
2016/0329957November 2016Schmid et al.
2016/0336091November 2016Henry et al.
2016/0336092November 2016Henry et al.
2016/0336636November 2016Henry et al.
2016/0336996November 2016Henry
2016/0336997November 2016Henry
2016/0351987December 2016Henry
2016/0359523December 2016Bennett
2016/0359524December 2016Bennett et al.
2016/0359529December 2016Bennett et al.
2016/0359530December 2016Bennett
2016/0359541December 2016Bennett
2016/0359542December 2016Bennett
2016/0359543December 2016Bennett et al.
2016/0359544December 2016Bennett
2016/0359546December 2016Bennett
2016/0359547December 2016Bennett et al.
2016/0359649December 2016Bennett et al.
2016/0360511December 2016Barzegar
2016/0360533December 2016Bennett et al.
2016/0365175December 2016Bennett et al.
2016/0365893December 2016Bennett et al.
2016/0365894December 2016Bennett et al.
2016/0365897December 2016Gross
2016/0365916December 2016Bennett et al.
2016/0365943December 2016Henry et al.
2016/0365966December 2016Bennett et al.
2016/0366586December 2016Gross et al.
2016/0366587December 2016Gross
2016/0373164December 2016Kawasaki et al.
2016/0373937December 2016Bennett et al.
2016/0380327December 2016Henry
2016/0380328December 2016Henry
2016/0380358December 2016Henry
2016/0380701December 2016Henry et al.
2016/0380702December 2016Henry et al.
2017/0018174January 2017Gerszberg
2017/0018332January 2017Barzegar et al.
2017/0018830January 2017Henry et al.
2017/0018831January 2017Henry et al.
2017/0018832January 2017Henry et al.
2017/0018851January 2017Hnery et al.
2017/0018852January 2017Adriazola et al.
2017/0018856January 2017Henry
2017/0019130January 2017Hnery et al.
2017/0019131January 2017Henry et al.
2017/0019150January 2017Henry
2017/0019189January 2017Henry et al.
2017/0025728January 2017Henry et al.
2017/0025732January 2017Henry et al.
2017/0025734January 2017Henry et al.
2017/0025839January 2017Henry et al.
2017/0026063January 2017Henry
2017/0026082January 2017Henry et al.
2017/0026084January 2017Henry et al.
2017/0026129January 2017Henry
2017/0033464February 2017Henry et al.
2017/0033465February 2017Henry et al.
2017/0033466February 2017Henry et al.
2017/0033834February 2017Gross
2017/0033835February 2017Bennett et al.
2017/0033953February 2017Henry et al.
2017/0033954February 2017Henry et al.
2017/0034042February 2017Gross et al.
2017/0041081February 2017Henry et al.
2017/0047662February 2017Henry et al.
2017/0063430March 2017Shala
2017/0064715March 2017Niewczas et al.
2017/0069944March 2017Henry
2017/0075677March 2017Gross et al.
2017/0077998March 2017Gerszberg et al.
2017/0078063March 2017Gerszberg
2017/0078064March 2017Gerszberg et al.
2017/0079024March 2017Gerszberg
2017/0079036March 2017Gerszberg
2017/0079037March 2017Gerszberg et al.
2017/0079038March 2017Gerszberg et al.
2017/0079039March 2017Gerszberg et al.
2017/0085003March 2017Johnson et al.
2017/0085295March 2017Stuckman
2017/0085336March 2017Henry
2017/0093693March 2017Barzegar et al.
2017/0093807March 2017Gross et al.
2017/0098881April 2017Barnickel et al.
2017/0098884April 2017Barnickel et al.
2017/0098889April 2017Henry
2017/0099079April 2017Gross
2017/0110795April 2017Henry
2017/0110804April 2017Hnery et al.
2017/0111805April 2017Barzegar et al.
2017/0117937April 2017Henry
2017/0117938April 2017Henry
2017/0117939April 2017Gerszberg et al.
2017/0117941April 2017Gerszberg et al.
2017/0127290May 2017Uelk et al.
2017/0141856May 2017Barzegar
2017/0149489May 2017Bennett
2017/0163526June 2017Henry
2017/0179563June 2017Henry et al.
2017/0179608June 2017Henry et al.
2017/0179609June 2017Henry
2017/0180801June 2017Gerszberg et al.

Зарубежные патентные документы

565039Sep 1987AU
582630Apr 1989AU
606303Jan 1991AU
7261000Apr 2001AU
760272May 2003AU
2005227368Feb 2009AU
2010101079Nov 2010AU
2007215252Jan 2011AU
201400748Mar 2014AU
2014200748Mar 2014AU
1136267Nov 1982CA
1211813Sep 1986CA
1328009Mar 1994CA
2260380Dec 2000CA
2449596Jun 2005CA
2515560Feb 2007CA
2664573Apr 2008CA
2467988Nov 2010CA
2777147Apr 2011CA
2814529Apr 2012CA
2787580Feb 2013CA
2927054May 2015CA
2940976Sep 2015CA
2116969Sep 1992CN
1155354Jul 1997CN
1411563Apr 2003CN
1126425Oct 2003CN
2730033Sep 2005CN
1833397Sep 2006CN
1885736Dec 2006CN
201048157Apr 2008CN
201146495Nov 2008CN
201207179Mar 2009CN
100502181Jun 2009CN
201282193Jul 2009CN
101834011Apr 2010CN
1823275May 2010CN
101785201Jul 2010CN
1820482Dec 2010CN
101075702Feb 2011CN
101978613Feb 2011CN
102130698Jul 2011CN
102136634Jul 2011CN
201985870Sep 2011CN
102208716Oct 2011CN
102280704Dec 2011CN
102280709Dec 2011CN
202093126Dec 2011CN
102351415Feb 2012CN
102396111Mar 2012CN
202253536May 2012CN
102544736Jul 2012CN
102590893Jul 2012CN
102694351Sep 2012CN
202424729Sep 2012CN
101662076Nov 2012CN
102017692Apr 2013CN
103078673May 2013CN
103117118May 2013CN
103163881Jun 2013CN
203204743Sep 2013CN
1863244Oct 2013CN
101958461Nov 2013CN
103700442Apr 2014CN
103700442Apr 2014CN
103943925Jul 2014CN
104052742Sep 2014CN
104064844Sep 2014CN
203813973Sep 2014CN
104091987Oct 2014CN
104092028Oct 2014CN
203931626Nov 2014CN
203950607Nov 2014CN
1 041 81 552Dec 2014CN
204538183Aug 2015CN
102412442Oct 2015CN
204760545Nov 2015CN
105262551Jan 2016CN
205265924Jan 2016CN
105359572Feb 2016CN
105453340Mar 2016CN
105594138May 2016CN
104162995Jun 2016CN
105813193Jul 2016CN
3504546Aug 1986DE
3533204Mar 1987DE
3533211Mar 1987DE
3827956Mar 1989DE
4027367Jul 1991DE
4225595Sep 1993DE
19501448Jul 1996DE
19939832Feb 2001DE
10043761Nov 2002DE
102004024356Sep 2005DE
69732676Apr 2006DE
4337835May 2008DE
102007049914Apr 2009DE
102012004998Jul 2013DE
102012203816Sep 2013DE
0102846Mar 1984EP
0110478Jun 1984EP
0136818Apr 1985EP
0280379Aug 1988EP
0330303Aug 1989EP
0331248Sep 1989EP
0342149Nov 1989EP
0391719Apr 1990EP
425979May 1991EP
0485467May 1992EP
272785Feb 1994EP
0651487Oct 1994EP
0371660Apr 1996EP
0756392Jan 1997EP
834722Apr 1998EP
0840464May 1998EP
0871241Oct 1998EP
0890132Jan 1999EP
755092Apr 1999EP
0896380Oct 1999EP
676648May 2000EP
1085599Mar 2001EP
0907983Jun 2001EP
0756786Aug 2001EP
1127283Aug 2001EP
1129550Sep 2001EP
1184930Mar 2002EP
1195847Apr 2002EP
1237303Sep 2002EP
1296146Mar 2003EP
0772061Jul 2003EP
1346431Sep 2003EP
1249056Jan 2004EP
1376755Jan 2004EP
1401048Mar 2004EP
1454422Sep 2004EP
1488397Dec 2004EP
1509970Mar 2005EP
1371108Jun 2005EP
1550327Jul 2005EP
1341255Aug 2005EP
1577687Sep 2005EP
1312135Nov 2005EP
1608110Dec 2005EP
1624685Feb 2006EP
1642468Apr 2006EP
1647072Apr 2006EP
1608110Oct 2006EP
1793508Jun 2007EP
1842265Oct 2007EP
1898532Mar 2008EP
1930982Jun 2008EP
1953940Aug 2008EP
1696509Oct 2009EP
2159749Mar 2010EP
2165550Mar 2010EP
1166599May 2010EP
1807950Jan 2011EP
2404347Jan 2012EP
2472671Jul 2012EP
1817855Jan 2013EP
2568528Mar 2013EP
2302735Sep 2013EP
2472737Sep 2013EP
2640115Sep 2013EP
2016643Jul 2014EP
2760081Jul 2014EP
2804259Nov 2014EP
2507939Dec 2014EP
2680452Jan 2015EP
2838155Feb 2015EP
2846480Mar 2015EP
2849524Mar 2015EP
2850695Mar 2015EP
2853902Apr 2015EP
2854361Apr 2015EP
2870802May 2015EP
2710400Jun 2015EP
3076482Oct 2016EP
2119804Aug 1972FR
2214161Aug 1974FR
2416562Aug 1979FR
2583226Dec 1986FR
2691602Nov 1993FR
2849728Jul 2004FR
2841387Apr 2006FR
2893717May 2007FR
2946466Mar 2012FR
2986376Oct 2014FR
3034203Sep 2016FR
175489Feb 1922GB
462804Mar 1937GB
529290Nov 1940GB
603119Oct 1945GB
589603Jun 1947GB
640181Jul 1950GB
663166Dec 1951GB
667290Feb 1952GB
668827Mar 1952GB
682115Nov 1952GB
682817Nov 1952GB
731473Jun 1955GB
746111Mar 1956GB
751153Jun 1956GB
767506Feb 1957GB
835976Jun 1960GB
845492Aug 1960GB
859951Jan 1961GB
889856Feb 1962GB
905417Sep 1962GB
993561May 1965GB
1004318Sep 1965GB
1076772Jul 1967GB
1141390Jan 1969GB
1298387Nov 1972GB
1383549Feb 1974GB
1370669Oct 1974GB
1422956Jan 1976GB
1424351Feb 1976GB
1468310Mar 1977GB
1469840Apr 1977GB
1527228Oct 1978GB
2010528Jun 1979GB
2045055Oct 1980GB
1580627Dec 1980GB
1584193Feb 1981GB
2227369Jul 1990GB
2247990Mar 1992GB
2368468May 2002GB
2362472Oct 2003GB
2393370Mar 2004GB
2394364Jun 2005GB
2414862Dec 2005GB
2411554Jan 2006GB
705192Apr 2007GB
714974Sep 2007GB
718597Oct 2007GB
2474037Apr 2011GB
2476787Jul 2011GB
2474605Sep 2011GB
2485355May 2012GB
2481715Jan 2014GB
2507269Apr 2014GB
2476149Jul 2014GB
2532207May 2016GB
261253Jun 2014IN
7352/CHENP/2015Jul 2016IN
201647015348Aug 2016IN
S50109642Sep 1975JP
55124303Sep 1980JP
55138902Oct 1980JP
574601Jan 1982JP
61178682Nov 1986JP
61260702Nov 1986JP
62110303Jul 1987JP
62190903Aug 1987JP
02214307Aug 1990JP
03167906Jul 1991JP
0653894Aug 1991JP
04369905Dec 1992JP
3001844Sep 1994JP
077769Jan 1995JP
7212126Nov 1995JP
0829545Feb 1996JP
08167810Jun 1996JP
08196022Jul 1996JP
08316918Nov 1996JP
2595339Apr 1997JP
2639531Aug 1997JP
10206183Aug 1998JP
10271071Oct 1998JP
116928Jan 1999JP
1114749Jan 1999JP
11239085Aug 1999JP
11313022Nov 1999JP
2000077889Mar 2000JP
2000216623Aug 2000JP
2000244238Sep 2000JP
2001217634Aug 2001JP
2002029247Jan 2002JP
2002111579Apr 2002JP
2002236174Aug 2002JP
200328219Jan 2003JP
2003008336Jan 2003JP
2003057464Feb 2003JP
2003511677Mar 2003JP
3411428Jun 2003JP
2003324309Nov 2003JP
3480153Dec 2003JP
2003344883Dec 2003JP
2004521379Jul 2004JP
2004253853Sep 2004JP
2004274656Sep 2004JP
2004297107Oct 2004JP
2004304659Oct 2004JP
2005503709Feb 2005JP
2005110231Apr 2005JP
2005182469Jul 2005JP
3734975Jan 2006JP
2006153878Jun 2006JP
2006163886Jun 2006JP
2006166399Jun 2006JP
2007042009Feb 2007JP
2007072945Mar 2007JP
3938315Jun 2007JP
2007174017Jul 2007JP
2007259001Oct 2007JP
4025674Dec 2007JP
2008017263Jan 2008JP
2008021483Jan 2008JP
4072280Apr 2008JP
4142062Aug 2008JP
2008209965Sep 2008JP
2008218362Sep 2008JP
2009004986Jan 2009JP
4252573Apr 2009JP
4259760Apr 2009JP
2009124229Jun 2009JP
2010045471Feb 2010JP
2010192992Sep 2010JP
2010541468Dec 2010JP
2011160446Aug 2011JP
2012058162Mar 2012JP
2012090242May 2012JP
2012175680Sep 2012JP
2012205104Oct 2012JP
2012248035Dec 2012JP
2013046412Mar 2013JP
2013110503Jun 2013JP
5230779Jul 2013JP
2014045237Mar 2014JP
5475475Apr 2014JP
5497348May 2014JP
5618072Nov 2014JP
2015095520May 2015JP
2015188174Oct 2015JP
20000074034Dec 2000KR
20020091917Dec 2002KR
100624049Sep 2006KR
200425873Sep 2006KR
100636388Oct 2006KR
100725002Jun 2007KR
100849702Jul 2008KR
100916077Aug 2009KR
100952976Apr 2010KR
100989064Oct 2010KR
101060584Aug 2011KR
101070364Sep 2011KR
101212354Dec 2012KR
101259715Apr 2013KR
101288770Jul 2013KR
20140104097Aug 2014KR
101435538Sep 2014KR
101447809Oct 2014KR
20150087455Jul 2015KR
101549622Sep 2015KR
200479199Dec 2015KR
101586236Jan 2016KR
101606803Jan 2016KR
101607420Mar 2016KR
69072Jan 1945NL
2129746Apr 1999RU
2432647 01Oct 2011RU
201537432Oct 2015TW
8301711May 1983WO
9116770Oct 1991WO
9210014Jun 1992WO
9323928Nov 1993WO
9424467Oct 1994WO
9523440Aug 1995WO
9529537Nov 1995WO
199529537Nov 1995WO
9603801Feb 1996WO
199619089Jun 1996WO
9639729Dec 1996WO
WO 96/41157Dec 1996WO
9735387Sep 1997WO
9737445Oct 1997WO
9829853Jul 1998WO
9859254Dec 1998WO
WO 98/57207Dec 1998WO
9923848May 1999WO
9948230Sep 1999WO
199945310Sep 1999WO
9967903Dec 1999WO
0070891Nov 2000WO
2000/74428Dec 2000WO
WO2001014985Mar 2001WO
0128159Apr 2001WO
0131746May 2001WO
0145206Jun 2001WO
0192910Dec 2001WO
02061467Aug 2002WO
02061971Aug 2002WO
03/005629Jan 2003WO
2003009083Jan 2003WO
03012614Feb 2003WO
200326166Mar 2003WO
03026462Apr 2003WO
03044981May 2003WO
2003088418Oct 2003WO
03099740Dec 2003WO
2004011995Feb 2004WO
2004038891May 2004WO
2004/051804Jun 2004WO
2004051804Jun 2004WO
2004054159Jun 2004WO
2004077746Sep 2004WO
2005015686Feb 2005WO
2005072469Aug 2005WO
2006012610Feb 2006WO
2006061865Jun 2006WO
2006085804Aug 2006WO
2006102419Sep 2006WO
2006111809Oct 2006WO
2006116396Nov 2006WO
2006122041Nov 2006WO
2006125279Nov 2006WO
2007000777Feb 2007WO
2006050331Mar 2007WO
2007031435Mar 2007WO
2007071797Jun 2007WO
2007148097Dec 2007WO
2008003939Jan 2008WO
2007094944Mar 2008WO
2007149746Apr 2008WO
2008044062Apr 2008WO
2008055084May 2008WO
2008061107May 2008WO
2008069358Jun 2008WO
2008070957Jun 2008WO
2008102987Aug 2008WO
2008117973Oct 2008WO
2008155769Dec 2008WO
2009014704Jan 2009WO
2007098061Feb 2009WO
2009031794Mar 2009WO
2009035285Mar 2009WO
2009090602Jul 2009WO
2009123404Oct 2009WO
2009131316Oct 2009WO
2010017549Feb 2010WO
2010050892May 2010WO
2010147806Dec 2010WO
2011006210Jan 2011WO
2011032605Mar 2011WO
2011085650Jul 2011WO
2011137793Nov 2011WO
2012/007831Jan 2012WO
2012038816Mar 2012WO
2012050069Apr 2012WO
2012064333May 2012WO
2012113219Aug 2012WO
2012171205Dec 2012WO
2012172565Dec 2012WO
2013013162Jan 2013WO
2013013465Jan 2013WO
2013023226Feb 2013WO
2013028197Feb 2013WO
WO 2013/017822Feb 2013WO
2013035110Mar 2013WO
2013/073548May 2013WO
2013073548May 2013WO
2013100912Jul 2013WO
2013112353Aug 2013WO
2013115802Aug 2013WO
2013121682Aug 2013WO
2013123445Aug 2013WO
2013/138627Sep 2013WO
2014/045236Sep 2013WO
2013136213Sep 2013WO
2013138627Sep 2013WO
2013157978Oct 2013WO
2013172502Nov 2013WO
2014/018434Jan 2014WO
2014011438Jan 2014WO
2014018434Jan 2014WO
2014065952May 2014WO
2014069941May 2014WO
2014083500Jun 2014WO
2014092644Jun 2014WO
2014094559Jun 2014WO
2014096868Jun 2014WO
2014099340Jun 2014WO
2013076499Jul 2014WO
2014112994Jul 2014WO
2014128253Aug 2014WO
2014137546Sep 2014WO
2014145862Sep 2014WO
2014147002Sep 2014WO
2014197926Dec 2014WO
2015002658Jan 2015WO
2015006636Jan 2015WO
2015008442Jan 2015WO
2015024006Feb 2015WO
2015027033Feb 2015WO
2015035463Mar 2015WO
2015/055230Apr 2015WO
2015052478Apr 2015WO
2015052480Apr 2015WO
2015069090May 2015WO
2015069431May 2015WO
2015077644May 2015WO
2015088650Jun 2015WO
2015090382Jun 2015WO
2015120626Aug 2015WO
2015123623Aug 2015WO
2015132618Sep 2015WO
2015167566Nov 2015WO
2015175054Nov 2015WO
2015197580Dec 2015WO
2016003291Jan 2016WO
2016004003Jan 2016WO
2016009402Jan 2016WO
WO 2016/012889Jan 2016WO
2016027007Feb 2016WO
2016028767Feb 2016WO
2016/043949Mar 2016WO
2016032592Mar 2016WO
2016036951Mar 2016WO
2016043949Mar 2016WO
2016048214Mar 2016WO
2016048257Mar 2016WO
2016053572Apr 2016WO
2016053573Apr 2016WO
2016060761Apr 2016WO
2016060762Apr 2016WO
2016061021Apr 2016WO
2016064502Apr 2016WO
2016064505Apr 2016WO
2016064516Apr 2016WO
2016064700Apr 2016WO
WO 2016/064502Apr 2016WO
2016073072May 2016WO
2016081125May 2016WO
2016081128May 2016WO
2016081129May 2016WO
2016081134May 2016WO
2016081136May 2016WO
2016086306Jun 2016WO
2016089491Jun 2016WO
2016089492Jun 2016WO
2016096029Jun 2016WO
2016122409Aug 2016WO
2016133672Aug 2016WO
WO 2016/125161Aug 2016WO
WO 2016/133509Aug 2016WO
2016145411Sep 2016WO
WO 2016/137982Sep 2016WO
2016161637Oct 2016WO
2016169058Oct 2016WO
2016171907Oct 2016WO
2016176030Nov 2016WO
2016200492Dec 2016WO
2016200579Dec 2016WO
2017/011099Jan 2017WO
2017011100Jan 2017WO
2017011101Jan 2017WO
2017011102Jan 2017WO
2017011103Jan 2017WO
2017011227Jan 2017WO
2017014840Jan 2017WO
2017014842Jan 2017WO
2017023412Feb 2017WO
2017023413Feb 2017WO
2017023417Feb 2017WO
2017/048417Mar 2017WO
2017058468Apr 2017WO
2017058477Apr 2017WO
2017065898Apr 2017WO

Другие источники


PCT/US16/027397 International Search Report & Written Opinion dated Jun. 24, 2016. cited by applicant .
PCT/US16/027398 International Search Report and Written Opinion dated Jun. 24, 2016. cited by applicant .
PCT/US16/027403 Internatioanl Search Report & Written Opinion dated Jun. 22, 2016. cited by applicant .
"International Preliminary Report on Patentability", PCT/US2014/039746, dated Dec. 10, 2015. cited by applicant .
"International Preliminary Report on Patentability", PCT/US2014/060841, dated May 19, 2016, 8 pages. cited by applicant .
"International Preliminary Report on Patentability & Written Opinion", PCT/US2014/061445, dated Jun. 23, 2016, 9 pages. cited by applicant .
"International Search Report & Written Opinion", PCT/US2015/034827, dated Sep. 30, 2015. cited by applicant .
"International Search Report & Written Opinion", PCT/US2015/056316, dated Jan. 21, 2016. cited by applicant .
"International Search Report & Written Opinion", PCT/US2015/056320, dated Jan. 29, 2016. cited by applicant .
"International Search Report & Written Opinion", PCT/US2015/056365, dated Jan. 22, 2016. cited by applicant .
"International Search Report & Written Opinion", PCT/US2015/056368, dated Jan. 25, 2016. cited by applicant .
"International Search Report & Written Opinion", PCT/US2015/056598, dated Jan. 28, 2016. cited by applicant .
"International Search Report & Written Opinion", PCT/US2015/056615, dated Jan. 21, 2016. cited by applicant .
"International Search Report & Written Opinion", PCT/US2015/056626, dated Jan. 21, 2016. cited by applicant .
"International Search Report & Written Opinion", PCT/US2015/056632, dated Jan. 26, 2016. cited by applicant .
"International Search Report & Written Opinion", PCT/US2016/013988, dated Apr. 8, 2016. cited by applicant .
"International Search Report & Written Opinion", PCT/US2016/020001, dated May 23, 2016. cited by applicant .
"International Search Report & Written Opinion", PCT/US2016/026860, dated Jun. 1, 2016. cited by applicant .
"International Search Report & Written Opinion", PCT/US2016/026318, dated Jun. 15, 2016. cited by applicant .
"International Search Report & Written Opinion", PCT/US2016/028412, dated Jun. 27, 2016. cited by applicant .
"International Search Report & Written Opinion", PCT/US2014/039746, dated Jan. 12, 2015. cited by applicant .
"International Search Report & Written Opinion", PCT/US2014/060841, dated Jan. 7, 2015. cited by applicant .
"International Search Report & Written Opinion", PCT/US2015/039848, dated Oct. 20, 2015. cited by applicant .
"International Search Report & Written Opinion", PCT/US2015/047315, dated Oct. 30, 2015. cited by applicant .
"International Search Report & Written Opinion", PCT/US2015/048454, dated Nov. 11, 2015. cited by applicant .
"International Search Report & Written Opinion", PCT/US2015/049928, dated Nov. 16, 2015. cited by applicant .
"International Search Report & Written Opinion", PCT/US2015/049932, dated Nov. 16, 2015. cited by applicant .
"International Search Report & Written Opinion", PCT/US2015/049927, dated Nov. 24, 2015. cited by applicant .
"International Search Report & Written Opinion", PCT/US2015/051193, dated Nov. 27, 2015. cited by applicant .
"International Search Report & Written Opinion", PCT/US2015/051146, dated Dec. 15, 2015. cited by applicant .
"International Search Report & Written Opinion", PCT/US2015/051183, dated Dec. 15, 2015. cited by applicant .
"International Search Report & Written Opinion", PCT/US2015/051194, dated Dec. 15, 2015. cited by applicant .
"International Search Report & Written Opinion", PCT/US2015/051578, dated Dec. 17, 2015. cited by applicant .
"International Search Report & Written Opinion", PCT/US2015/051583, dated Dec. 21, 2015. cited by applicant .
"International Search Report & Written Opinion", PCT/US2015/048458, dated Dec. 23, 2015. cited by applicant .
"International Search Report & Written Opinion", PCT/US2015/051213, dated Dec. 4, 2015. cited by applicant .
"International Search Report & Written Opinion", PCT/US2015/051163, dated Dec. 7, 2015. cited by applicant .
"International Search Report & Written Opinion", PCT/US2014/061445, dated Feb. 10, 2015. cited by applicant .
"International Search Report & Written Opinion", PCT/US16/28207, dated Jun. 15, 2016. cited by applicant .
"International Search Report & Written Opinion", PCT/US2016/015501, dated Apr. 29, 2016, 11 pages. cited by applicant .
"International Search Report & Written Opinion", PCT/US2015/047225, dated Nov. 6, 2015, dated Nov. 6, 2015. cited by applicant .
"International Search Report and Written Opinion", PCT/US2016/028197, dated Jun. 24, 2016. cited by applicant .
"PCT International Search Report & Written Opinion", PCT/US2016/026193, dated Jun. 1, 2016. cited by applicant .
"Transducer", IEEE Std 100-2000, Sep. 21, 2015, 1154. cited by applicant .
Alam, M.N. et al., "Novel surface wave exciters for power line fault detection and communications." Antennas and Propagation (APSURSI), 2011 IEEE International Symposium on. IEEE, 2011. cited by applicant .
Friedman, M et al., "Low-loss RF transport over long distances," IEEE Transactions on Microwave Theory and Techniques, Jan. 1, 2001, pp. 341-348. cited by applicant .
Goldsmith, P.F., "Quasi-optical techniques", Proceedings of the IEEE., vol. 80, No. 11, Nov. 1, 1992. cited by applicant .
Laforte, J.L. et al., "State-of-the-art on power line de-icing", Atmospheric Research 46, 143-158, 1998. cited by applicant .
Ponchak, George E. et al., "A New Model for Broadband Waveguide to Microstrip Transition Design", NASA TM-88905, Dec. 1, 1986, 18 pgs. cited by applicant .
"24 Volt D.C Flashing Light With Built-in Antenna 433Mhz, DEA+ Product Guide" Meteor electrical, meteorelectrical.com, Code: LUMY/24A, Jul. 28, 2010. cited by applicant .
"An Improved Solid Dielectric Lens Impulse Radiating Antenna," SBIR/STTR, DoD, sbir.gov, 2004. cited by applicant .
"Boost: The world's first Wi-Fi extending led bulb," Sengled, sengled.com, Dec. 2014 http://www.sengled.com/sites/default/files/field/product/downlo- ads/manual/a01-a60.sub.--na.sub.--user.sub.--manual.sub.--20141223.pdf. cited by applicant .
"Cband & L/Sband Telemetry Horn Antennas," mWAVE, mwavellc.com, Jul. 6, 2012, http://www.mwavellc.com/custom-Band-LS--BandTelemetryHornAntennas.p- hp. cited by applicant .
"Dielectric Antenna," Microwave Technologies, Ind., microwavetechnologiesinc.co.in http://www.microwavetechnologiesinc.co.in/microwavecommunicationlabproduc- ts.html#dielectricantenna, May 21, 2015. cited by applicant .
"Examples of Cell Antennas," RF Check.RTM., rfcheck.com, Feb. 1, 2010 https://web.archive.org/web/20100201214318/http://www.rfcheck.com/Example- sof-Cell-Antennas.php. cited by applicant .
"Flashing Light : Ir.Lamp," Beninca.RTM., beninca.com, Feb. 23, 2015. http://www.beninca.com/en/news/2015/02/23/lampeggiante-irlamp.html. cited by applicant .
"Horn Antennas," Steatite QPar Antennas, steatiteqparantennas.co.uk, http://www.steatiteqparantennas.co.uk/products hornantennas.html? http://www.steatiteqparantennas.co.uk/consultancy/customhornantennas/, May 21, 2015. cited by applicant .
"How is ELine Different?," ELine Corridor Systems, corridor.biz http://www.corridor.biz/ELine.sub.--is.sub.--different.html, Apr. 23, 2015. cited by applicant .
"Identity Management," Tuomas Aura CSE-C3400 Information Security, Aalto University, Autumn 2014, 33 pgs. cited by applicant .
"Integrated Radio Masts Fully camouflaged Outdoor-Wi-Fi APs in GRP-lamp poles," Brown-iposs, brown-iposs.com, Mar. 21, 2014. cited by applicant .
"New Wi-Fi antenna enhances wireless coverage," ScienceDaily.RTM., sciencedaily.com, May 29, 2015. cited by applicant .
"Power Communication," Communication Power Solutions, Inc., cpspower.biz, http://www.cpspower.biz/services/powercommunications/, Oct. 2013. cited by applicant .
"Power Line Communications," Atmel.RTM., atmel.com http://www.atmel.com/products/smartenergy/powerlinecommunications/default- .aspx, 2015. cited by applicant .
"Power line communications: An overview Part I." King Fahd University of Petroleum and Minerals, Dhahran, KSA, 2008. cited by applicant .
"Powerline Communication," Cypress Perform, cypress.com http://www.cypress.com/?id=2330, Apr. 23, 2015. cited by applicant .
"Products: GSM Mircro Repeater." L-Tel: Quanzhou L-TEL Communication Equipment Co., Ltd., I-tel.com, Apr. 24, 2015. cited by applicant .
"Waveguide-fed Conical Horn," Antenna Magus, antennamagus.com, .COPYRGT. 2015, accessed: Aug. 2015. cited by applicant .
"Product Abstract--Program on Technology Innovation: Study on the Integration of High Temperature Superconducting DC Cables Within the Eastern and West urn North American Power Grids." EPRI--Electronic Power Research Institute, epri.com, Product ID:10203, Nov. 25, 2009. cited by applicant .
"A Dielectric Lens Antenna with Enhanced Aperture Efficiency for Industrial Radar Applications", Computer Simulation Technology, cst.com, May 10, 2011. cited by applicant .
"A New Approach to Outdoor DAS Network Physical Layer Using E-Line Technology", Corridor Systems, Mar. 2011, 5 pages. cited by applicant .
"About Firelight Media Group", http://www. insu ra ncetechnologies.com/Products/Prod ucts.sub.--firelight.sub.--overview .shtml, Firelight.COPYRGT.. Insurance Technologies, LLC,, Apr. 19, 2015. cited by applicant .
"Asahi Multi-Core Fiber Cable", Industrial Fiber optics, i-fiberoptics.com http://i-fiberoptics.com/m u lti-core-fi ber-ca ble. ph p, Apr. 26, 2015. cited by applicant .
"Bi-Axial PA Horn with Gimbal Mount", Atlas Sound, MCM Electronics, mcmelectronics.com, MCM Part #555-13580, 2011. cited by applicant .
"Broadband Negligible Loss Metamaterials", Computer Electmagnetics and Antennas Research Laboratory, cearl.ee.psu.edu, May 15, 2012. cited by applicant .
"Cisco IP VSAT Satellite WAN Network Module for Cisco Integrated Services Routers", http://www.cisco.com/c/en/us/products/collateral/interfaces-mod- ules/ip-vsatsatellite-wan-module/product.sub.--data.sub.--sheet0900aecd804- bbf6f.html, Jul. 23, 2014. cited by applicant .
"Cloud Management", Cisco Meraki, cisco.com, Sep. 11, 2015. cited by applicant .
"Decryption: Identify & Control Encrypted Traffic", Palo Alto Networks, paloaltonetworks.com, Mar. 7, 2011. cited by applicant .
"Denso", Winn & Coales (Denso) Ltd. UK, denso.net, http://www.denso.net/voidfiller/voidpump.htm, 2015, 1 page. cited by applicant .
"Detecting and Preventing MAC Spoofing", Detecting and Preventing MAC Spoofing | Network Access Control Solutions, infoexpress, 2014. cited by applicant .
"Electronic Business Fulfillment FireLight.RTM.", Firelight Media Group LLC, firelightmedia.net http://www .firelightmedia .net/fmg/index.php/home, Apr. 19, 2015, 2 pages. cited by applicant .
"Elliptical Polarization", "Elliptical Polarization" Wikipedia, <http://en.wikipedia.org/wiki/Elliptical.sub.--polarization>, Apr. 21, 2015, 3 pgs. cited by applicant .
"Exacter Outage-Avoidance System", http://www.epri.com/abstracts/Pages/ProductAbstract.aspx?ProductId=000000- 000001020393, Nov. 30, 2009. cited by applicant .
"GM-12 Gimbal Mount", Newmark System, Inc, newmarksystems.com, 2015. cited by applicant .
"HiveManager Network Management System", Aerohive.RTM. Networks, aerohive.com, accessed: Sep. 2015. cited by applicant .
"Home", Darktrace, darktrace.com, Jul. 10, 2014. cited by applicant .
"How to Use STUF", STUF Page Link Info, crossdevices.com, http://www.crossdevices.com/cross.sub.--devices.sub.--010.htm, 2015, 1 page. cited by applicant .
"IEEE Standard for Information technology--Local and metropolitan area networks--Specific requirements", Part 15.4: Wireless Medium Access Control (MAC) and Physical Layer (PHY) Specifications for Low Rate Wireless Personal Area Networks (WPANs), in IEEE Std 802.15.4, (Revision of IEEE Std 802.15.4-2003), Sep. 7, 2006, 1-320. cited by applicant .
"Installing Satellite Accessories", ACE.RTM., acehardware.com, Aug. 5, 2006. cited by applicant .
"Ipitek All-Optical Sensors", http://www.ipitek.com/solutions-by-industry/all-optical-sensors; Jun. 2, 2014. cited by applicant .
"mmWave Axial Choke Horn Antenna with Lens", Feko, Sep. 24, 2013. cited by applicant .
"Network technology", nbnTM, nbnco.com.au, Jun. 27, 2014. cited by applicant .
"Norse Appliance.TM.: Block attacks before they target your network, and dramatically improve the ROI on your entire security infrastructure", norsecorp.com, 2015. cited by applicant .
"Out-of-Band Mgmt", Cradle Point, cradlepoint.com, accessed: Sep. 2015. cited by applicant .
"Out-of-Band Security Solution", Gigamon.RTM., gigamon.com, Aug. 3, 2014. cited by applicant .
"Powerline--Juice Up Your Network With Powerline", Netgear.RTM., netgear.com http://www.netgear.com/home/products/networking/powerline/, Apr. 21, 2015, 3 pages. cited by applicant .
"Pro 600 Sirius XM Radio Amplified Outdoor Antenna", Pixel Technologies, Oct. 3, 2014. cited by applicant .
"Product Overview: Introducing SilentDefense", Security Matters, secmatters.com, Nov. 9, 2013. cited by applicant .
"Quickly identify malicious traffics: Detect", Lancope.RTM., lancope.com, Mar. 15, 2015. cited by applicant .
"radar at st Andrews", mmwaves.epr, st-andrews.ac.uk, Feb. 4, 2011. cited by applicant .
"Resilience to Smart Meter Disconnect Attacks", ADSC Illinois at Singapore PTE, Ltd., publish.illinois.edu http://publish.illinois.edu/integrativesecurityassessment/resiliencetosma- rtmeterdisconnectattacks/, 2015. cited by applicant .
"RF Sensor Node Development Platform for 6LoWPAN and 2.4 GHz Applications", http://www.ti.com/tool/TIDM-RF-SENSORNODE, Jun. 2, 2014. cited by applicant .
"Smart Out-Of-Band Management", Open Gear, opengear.com, accessed: Sep. 2015. cited by applicant .
"Tapered waveguide", Lumerical Solutions, Inc., docs.lumerical.com, 2010. cited by applicant .
"Tapered Waveguides Improve Fiber Light Coupling Efficiency", Tech Briefs, techbriefs.com, Jan. 1, 2006, Molex Inc., Downers Grove, Illinois and KiloLambda Technologies Ltd., Tel Aviv, Israel. cited by applicant .
"Wireless powerline sensor", wikipedia.org, http://en.wikipedia.org/wiki/Wireless.sub.--powerline.sub.--sensor, 2014, 3 pages. cited by applicant .
Akiba, Shigeyuki et al., "Photonic Architecture for Beam Forming of RF Phased Array Antenna", Optical Fiber Communication Conference. Optical Society of America, 2014., Abstract Only. cited by applicant .
Alam, M N et al., "Novel surface wave exciters for power line fault detection and communications", Antennas and Propagation (APSURSI), 2011 IEEE International Symposium on, IEEE, Jul. 3, 2011 (Jul. 3, 2011). pp. 1139-1142. cited by applicant .
Alam, Md N. et al., "Design and Application of Surface Wave Sensors for nonintrusive Power Line Fault Detection," IEEE Sensors Journal, IEEE Service Center, New York, NY, US, vol. 13, No. 1, Jan. 1, 2013, pp. 339-347. cited by applicant .
Ali, Muhammad Q. et al., "Randomizing AMI configuration for proactive defense in smart grid", Smart Grid Communications (SmartGridComm), 2013 IEEE International Conference on. IEEE, Abstract Only, http://ieeexplore.ieee.org/xpl/login.jsp?tp=&arnumber=6688027, 2013. cited by applicant .
Angove, Alex, "Direct Bury Duct Assemblies, MPB 302 3+--Ribbonet Microducts", Ericsson, archive.ericsson.net, Jul. 30, 2014. cited by applicant .
Angove, Alex, "How the NBN Differs from ADSL2+, Cable and Wireless", Whistle Out, whistleout.com.au, Jul. 30, 2014. cited by applicant .
Arage, Alebel et al., "Measurement of wet antenna effects on millimetre wave propagation", Radar, 2006 IEEE Conference on IEEE, 2006, Abstract Only. cited by applicant .
Arthur, Joseph Kweku, "Improving QoS in UMTS Network in ACCRA Business District Using Tower-Less Towers", IPASJ International Journal of Electrical Engineering (IIJEE), vol. 2, Issue 11, Nov. 2014. cited by applicant .
Asadallahi, Sina et al., "Performance comparison of CSMA/CA Advanced Infrared (Alr) and a new pointtomultipoint optical MAC protocol." Wireless Communications and Mobile Computing Conference (IWCMC), 2012 8th International. IEEE, 2012., Abstract Only. cited by applicant .
Atwater, Harry A., "The promise of plasmonics." Scientific American 296.4 (2007): 56-62. cited by applicant .
Bach, Christian, "Current Sensor-Power Line Monitoring for Energy Demand Control", Application Note 308, http://www.enocean.com/fileadmin/redaktion/pdf/app.sub.--notes/AN308.sub.- --CURRENT.sub.--SENSOR.sub.--Jan09.pdf, Jan. 2009, 4 pages. cited by applicant .
Barron, Ashleigh L., "Integrated Multicore Fibre Devices for Optical Trapping", Diss. Heriot-Watt University, 2014, 11-15. cited by applicant .
Beal, J.C. et al., "Coaxial-slot surface-wave launcher", Electronics Letters 4.25 (1968): 557559, Abstract Only. cited by applicant .
Bhushan, Naga, "Network densification: the dominant theme for wireless evolution into 5G", Communications Magazine, IEEE 52.2 (2014): 82-89. cited by applicant .
Bing, Benny, "Ubiquitous Broadband Access Networks with Peer-to-Peer Application Support", Evolving the Access Network (2006): 27-36. cited by applicant .
Bing, Benny, "Ubiquitous Broadband Access Networks with Peer-to-Peer Application Support", Evolving the Access Network, 2006, 27-36. cited by applicant .
Bock, James et al., "Optical coupling." Journal of Physics: Conference Series. vol. 155. No. 1. IOP Publishing, 2009. cited by applicant .
Bowen, Leland H. et al., "A Solid Dielectric Lens Impulse Radiating Antenna with High Dielectric Constant Surrounded by a Cylindrical Shroud," Sensor and Simulation Note 498, Apr. 2005, Introduction, 3 pages. cited by applicant .
Bridges, Greg E. et al., "Plane wave coupling to multiple conductor transmission lines above a lossy earth", Compatibility, IEEE Transactions on 31.1, Abstract Only, 1989, 21-33. cited by applicant .
Brooke, Gary H., Properties of surface waveguides with discontinuities and perturbations in cross-section. Diss. University of British Columbia, 1977. cited by applicant .
Brown, J. et al., "The launching of radial cylindrical surface waves by a circumferential slot", Proceedings of the IEE Part B: Radio and Electronic Engineering 106.26 (1959): 123128., Abstract Only. cited by applicant .
Bruno, Joseph, "Interference Reduction in Wireless Networks", Computing Research Topics, Computing Sciences Department, Villanova University, Nov. 14, 2007, 8 pages. cited by applicant .
Burkhart, Martin et al., "Does Topology Control Reduce Interference?", Department of Computer Science, ETH Zurich, Proceedings of the 5th ACM international symposium on Mobile ad hoc networking and computing, ACM, 2004, 11 pages. cited by applicant .
Callis, et al., "An In-Line Power Monitor for HE11 Low Loss Transmission Lines", Proceedings of the 29th International Conference on Infrared and Millimeter Waves (IRMMW), Karlsruhe, Germany, 2004. cited by applicant .
Carroll, John M. et al., "Developing the Blacksburg electronic village", Communications of the ACM 39.12 (1996): 69-74. cited by applicant .
Chen, Dong et al., "A trust management model based on fuzzy reputation for internet of things", Computer Science and Information Systems 8.4 (2011): 12071228, Abstract Only. cited by applicant .
Chen, Yingying, "Detecting and Localizing Wireless Spoofing Attacks", Sensor, Mesh and Ad Hoc Communications and Networks, 2007, SECON'07. 4th Annual IEEE Communications Society Conference on IEEE, 2007, 10 pages. cited by applicant .
Chiba, Jiro, "Experimental Studies of the Losses and Radiations Due to Bends in the Goubau Line", IEEE Transactions on Microwave Theory and Techniques, Feb. 1977, 94-100. cited by applicant .
Chiba, Jiro, "On the Equivalent Circuit for the G-Line Above Ground", International Wroclaw Symposium on Electromagnetic Compatibility, 1998, 78-82. cited by applicant .
Cimini, Carlos Alberto et al., "Temperature profile of progressive damaged overhead electrical conductors", Journal of Electrical Power & Energy Systems 49 (2013): 280-286. cited by applicant .
Costantine, Joseph et al., "The analysis of a reconfigurable antenna with a rotating feed using graph models", Antennas and Wireless Propagation Letters 8 (2009): 943-946. cited by applicant .
Covington, Michael J. et al., "Threat implications of the internet of things", Cyber Conflict (CyCon), 2013 5th International Conference on. IEEE, 2013, Abstract Only. cited by applicant .
Crane, Robert K., "Analysis of the effects of water on the ACTS propagation terminal antenna", Antennas and Propagation, IEEE Transactions on 50.7 (2002): 954965, Abstract Only. cited by applicant .
De Sabata, Aldo et al., "Universitatea Politehnica", din Timi.sctn.oara Facultatea de Electronic{hacek over (a)} i Telecomunicatii, 2012. cited by applicant .
Dini, Gianluca et al., "MADAM: A Multilevel Anomaly Detector for Android Malware", MMMACNS. vol. 12, 2012. cited by applicant .
Doane, J.L. et al., "Oversized rectangular waveguides with modefree bends and twists for broadband applications", Microwave Journal 32(3), Abstract Only, 1989, 153-160. cited by applicant .
Doelitzscher, et al., "ViteraaS: Virtual cluster as a service." Cloud Computing Technology and Science (CloudCom), 2011 IEEE Third International Conference on. IEEE, 2011. cited by applicant .
Dooley, Kevin, "Out-of-Band Management", auvik, auvik.com, May 12, 2014. cited by applicant .
Dostert, Klaus, "Frequency-hopping spread-spectrum modulation for digital communications over electrical power lines." Selected Areas in Communications, IEEE Journal on 8.4 (1990): 700-710., Abstract Only. cited by applicant .
Dragoo, R.E. et al., "Fiber Optic Data Bus for the AN/GYQ21(V)." Harris Corp, U.S. Communications Syst. Div. Chart, Microcopy Resolution Test, 1980. cited by applicant .
Dutton, Harry Jr., "Understanding Optical Communications", International Technical Support Organization, SG24-5230-00, Sep. 1998. cited by applicant .
Ehyaie, Danial, "Novel Approaches to the Design of Phased Array Antennas," Diss. The University of Michigan, 2011. cited by applicant .
Elmore, Glenn, "Introduction to the Propagating Wave on a Single Conductor", www.corridor.biz, Jul. 27, 2009, 30 pages. cited by applicant .
Erickson, Katherine, "Conductive cylindrical surface waveguides." (2012). https://www.ideals.illinois.edu/bitstream/handle/2142/30914/Erickson.sub.- --Katherine.pdf?sequence=1. cited by applicant .
Erickson, Katherine, "Conductive cylindrical surface waveguides", 2012. cited by applicant .
Eskelinen, Harri, "DFM (A)-aspects for a horn antenna design," Lappeenranta University of Technology, 2004. cited by applicant .
Eskelinen, P., "A low-cost microwave rotary joint," International Radar Conference, Oct. 13-17, 2014, p. 1-4., Abstract Only, 1 page. cited by applicant .
Feng, Taiming et al., "Design of a survivable hybrid wireless-optical broadband-access network", Journal of Optical Communications and Networking 3.5, 2011, 458-464. cited by applicant .
Fenye, Bao et al., "Dynamic trust management for internet of things applications", Proceedings of the 2012 international workshop on Selfaware internet of things. ACM, 2012, Abstract Only, 1 page. cited by applicant .
Freyer, Dan, "Combating the Challenges of Ka-Band Signal Degradation", SatMagazine, satmagzine.com, Sep. 2014. cited by applicant .
Friedman, M. et al., "Low-Loss RF Transport Over Long Distances", IEEE Transactions on Microwave Theory an Techniques, vol. 49, No. 2, Feb. 2001, 341-348. cited by applicant .
Fromm, W. et al., "A new microwave rotary joint," 1958 IRE International Convention Record, Mar. 21-25, 1966, 6:78-82., Abstract Only, 2 pages. cited by applicant .
Garcia-Etxarri, Aitzol et al., "A combination of concave/convex surfaces for fieldenhancement optimization: the indented nanocone", Optics express 20.23, 2012, 2520125212. cited by applicant .
Ghazisaidi, Navid et al., "Survivability analysis of next-generation passive optical networks and fiber-wireless access networks", Reliability, IEEE Transactions on 60.2, 2011, 479-492. cited by applicant .
Golrezaei, Negin et al., "FemtoCaching: Wireless Video Content Delivery through Distributed Caching Helpers", INFOCOM, 2012 Proceedings IEEE. cited by applicant .
Gomes, Nathan J. et al., "Radio-over-fiber transport for the support of wireless broadband services", Journal of Optical Networking 8.2 (2009): 156-178. cited by applicant .
Gonthier, Francois et al., "Mode coupling in nonuniform fibers: comparison between coupled-mode theory and finite-difference beam-propagation method simulations", JOSA B 8.2 (1991): 416421, Abstract Only, 3 pages. cited by applicant .
Gritzalis, Dimitris et al., "The Sphinx enigma in critical VoIP infrastructures: Human or botnet?." Information, Intelligence, Systems and Applications (IISA), 2013 Fourth International Conference, IEEE, 2013. cited by applicant .
Han, Chong et al., "Crosslayer communication module for the Internet of Things", Computer Networks 57.3 (2013): 622633, Abstract Only, 1 page. cited by applicant .
Haroun, Ibrahim et al., "WLANs meet fiber optics--Evaluating 802.11 a WLANs over fiber optics links", RF Des. Mag (2003): 36-39. cited by applicant .
Hassan, Karim, "Fabrication and characterization of thermo-plasmonic routers for telecom applications", Diss. Univ. de Bourgogne, 2014. cited by applicant .
Hassan, Maaly A., "Interference reduction in mobile ad hoc and sensor networks", Journal of Engineering and Computer Innovations vol. 2(7), Sep. 2011, 138-154. cited by applicant .
Hassani, Alireza et al., "Porous polymer fibers for low-loss Terahertz guiding." Optics express 16.9 (2008): 6340-6351. cited by applicant .
Hautakorpi, Jani et al., "Requirements from Session Initiation Protocol (SIP) Session Border Control (SBC) Deployments." RFC5853, IETF (2010). cited by applicant .
Hawrylyshen, A. et al., "SIPPING Working Group J. Hautakorpi, Ed. Internet-Draft G. Camarillo Intended status: Informational Ericsson Expires: Dec. 18, 2008 R. Penfield Acme Packet." (2008). cited by applicant .
Hoss, R.J. et al., "Manufacturing Methods and Technology Program for Ruggedized Tactical Fiber Optic Cable", No. ITT-80-03-078. ITT Electrooptical Products Div Roanoke VA, 1980. cited by applicant .
Ippolito, Louis J., "Propagation effects handbook for satellite systems design. A summary of propagation impairments on 10 to 100 GHz satellite links with techniques for system design", 1989, Abstract Only, 1 page. cited by applicant .
Izumiyama, Hidetaka et al., "Multicast over satellite", Applications and the Internet, 2002.(SAINT 2002). Proceedings. 2002 Symposium on. IEEE, 2002. cited by applicant .
Jackson, Mark, "Timico CTO Hit by Slow FTTC Broadband Speeds After Copper Corrosion", ISP review, ispreview.co.uk, Mar. 5, 2013. cited by applicant .
Jaeger, Raymond et al., "Radiation Performance of Germanium Phosphosilicate Optical Fibers." RADC-TR-81-69: Final Technical Report, Galileo Electro-Optical Corp, (May 1981). cited by applicant .
James, J.R. et al., "Investigations and Comparisons of New Types of Millimetre-Wave Planar Arrays Using Microstrip and Dielectric Structures", Royal Military Coll of Science Shrivenham (England), 1985. cited by applicant .
Jang, Hung-Chin, "Applications of Geometric Algorithms to Reduce Interference in Wireless Mesh Network", Journal on Applications of Graph Theory in Wireless Ad hoc Networks and Sensor Networks (JGRAPH-HOC) vol. 2, No. 1, Abstract Only, Mar. 2010, 1 page. cited by applicant .
Jawhar, Imad et al., "A hierarchical and topological classification of linear sensor networks", Wireless Telecommunications Symposium, WTS, IEEE, http://faculty.uaeu.ac.ae/Nader.sub.--M/papers/WTS2009.pdf, 2009, 8 pages. cited by applicant .
Jee, George et al., "Demonstration of the Technical Viability of PLC Systems on Medium- and Low-Voltage Lines in the United States", Broadband is Power: Internet Access Via Power Line Networks, IEEE Communication Magazine, May 2003, 5 pages. cited by applicant .
Jeong, et al., "Study of elliptical polarization requirement of KSTAR 84-GHz ECH system", Journal-Korean Physical Society 49, 2006. cited by applicant .
Jin,, "Quasi-optical mode converter for a coaxial cavity gyrotron", Forschungszentrum, 2007. cited by applicant .
Jin, Yu et al., "Nevermind, the Problem Is Already Fixed: Proactively Detecting and Troubleshooting Customer DSL Problems", ACM CoNEXT, Philadelphia, USA, Nov.-Dec. 2010, 12 pages. cited by applicant .
Kamilaris, et al., "Exploring the Use of DNS as a Search Engine for the Web of Things." Internet of Things (WF-IoT), 2014 IEEE World Forum on. IEEE, 2014. cited by applicant .
Kang,, "Chapter 6: Array Antennas," IHS Engineering360, globalspec.com, http://www.globalspec.com/reference/75109/203279/chapter-6-array-antennas-, Apr. 22, 2015. cited by applicant .
Katkovnik, Vladimir et al., "High-resolution signal processing for a switch antenna array FMCW radar with a single channel receiver", Sensor Array and Multichannel Signal Processing Workshop Proceedings, 2002. IEEE, 2002. cited by applicant .
Khan,, "Dual polarized dielectric resonator antennas", Chalmers University of Technology, 2010. cited by applicant .
Kikuchi, H. et al., "Hybrid transmission mode of Goubau lines" ,J.Inst.Electr.Comm.Engrs., Japan,vol. 43, pp. 39-45,1960. cited by applicant .
Kirkham, H. et al., "Power system applications of fiber optics (Jet Propulsion Lab." JPL Publication 84-28, Electric Energy Systems Division, U.S. DoE, p. 180, (1984). cited by applicant .
Koshiba, Masanori et al., "Analytical expression of average power-coupling coefficients for estimating intercore crosstalk in multicore fibers", Photonics Journal, IEEE 4.5, 2012, 1987-1995. cited by applicant .
Kroon, Barnard et al., "Steady state RF fingerprinting for identity verification: one class classifier versus customized ensemble." Artificial Intelligence and Cognitive Science. Springer Berlin Heidelberg, 2010. 198206., Abstract Only, 3 pages. cited by applicant .
Kroyer, Thomas, "A Waveguide High Order Mode Reflectometer for the Large Hadron Collider Beam-pipe", Diss. TU Wien, 2003. cited by applicant .
Kuhn, Marc et al., "Power Line Enhanced Cooperative Wireless Communications", IEEE Journal on Selected Areas in Communications, vol. 24, No. 7, Jul. 2006, 10 pages. cited by applicant .
Kumar, Sailesh, "Survey of Current Network Intrusion Detection Techniques", Washington Univ. in St. Louis, Dec. 2007. cited by applicant .
Lappgroupusa, "Selection of Number of Cable Cores With Emphasis on Sizing Parameters", Industrial Cable & Connector Technology News, lappconnect.blogspot.com, http://lappconnect.blogspot.com/2014.sub.--10.sub.--01.sub.--archive.html-, Oct. 30, 2014. cited by applicant .
Leech, Jamie et al., "Experimental investigation of a low-cost, high performance focal-plane horn array." Terahertz Science and Technology, IEEE Transactions on 2.1 (2012): 61-70. cited by applicant .
Li, Xiang-Yang et al., "Interference-Aware Topology Control for Wireless Sensor Networks", SECON. vol. 5, 2005. cited by applicant .
Li, Xiaowei et al., "Integrated plasmonic semi-circular launcher for dielectric-loaded surface plasmonpolariton waveguide", Optics express 19.7 (2011): 65416548. cited by applicant .
Li, Xu et al., "Smart community: an internet of things application", Communications Magazine, IEEE 49.11 (2011): 68-75. cited by applicant .
Lier, E. et al., "Simple hybrid mode horn feed loaded with a dielectric cone," Electronics Letters 21.13 (1985): 563564. cited by applicant .
Lim, Christina et al., "Fiber-wireless networks and subsystem technologies", Lightwave Technology, Journal of 28.4 (2010): 390-405. cited by applicant .
Lou, Tiancheng, "Minimizing Average Interference through Topology Control", Algorithms for Sensor Systems, Springer Berlin Heidelberg, 2012, 115-129. cited by applicant .
Lucyszyn, S. et al., "Novel RF MEMS Switches", Microwave Conference, 2007. APMC 2007. Asia-Pacific. IEEE, 2007. cited by applicant .
Lucyszyn, Stepan et al., "RF MEMS for antenna applications", Antennas and Propagation (EuCAP), 2013 7th European Conference on. IEEE, 2013. cited by applicant .
Luo, Qi et al., "Circularly polarized antennas", John Wiley & Sons, 2013, Book--description only, 1 page. cited by applicant .
Mahato, Suvranshu Sekhar, Studies on an Infrared Sensor Based Wireless Mesh Network. Diss. 2010., Abstract Only, 2 pages. cited by applicant .
Maier, Martin et al., "The audacity of fiberwireless (FiWi) networks", AccessNets. Springer Berlin Heidelberg, 2009. 16-35. cited by applicant .
Marcatili, E.A. et al., "Hollow Metallic and Dielectric Waveguides for Long Distance Optical Transmission and Lasers", Bell System Technical Journal 43(4), Abstract Only, 2 pages, 1964, 1783-1809. cited by applicant .
McAllister, M.W. et al., "Resonant hemispherical dielectric antenna," Electronics Letters 20.16 (1984): 657659., Abstract Only, 1 page. cited by applicant .
Meng, H. et al., "A transmission line model for high-frequency power line communication channel", Power System Technology, PowerCon 2002. International Conference on. vol. 2. IEEE, 2002. http:/ /infocom. uniroma 1.it/ ''''enzobac/MengChen02. pdf, 2002. cited by applicant .
Menon, S.S. et al., "Propagation characteristics of guided modes in a solid dielectric pyramidal horn," Proceedings of the 2012 International Conference on Communication Systems and Network Technologies. IEEE Computer Society, 2012., Abstract Only, 2 pages. cited by applicant .
Mitchell, John E., "Integrated Wireless Backhaul Over Optical Access Networks", Journal of Lightwave Technology 32.20, 2014, 3373-3382. cited by applicant .
Miyagi, M., "Bending losses in hollow and dielectric tube leaky waveguides", Applied Optics 20(7), Abstract Only, 2 pages, 1981, 1221-1229. cited by applicant .
Moaveni-Nejad, Kousha et al., "Low-Interference Topology Control for Wireless Ad Hoc Networks", Department of Computer Science, Illinois Institute of Technology, Ad Hoc & Sensor Wireless Networks 1.1-2, 2005, 41-64. cited by applicant .
Moisan, M. et al., "Plasma sources based on the propagation of electromagnetic surface waves", Journal of Physics D: Applied Physics 24.7 (1991): 1025. cited by applicant .
Mokhtarian, Kianoosh et al., "Caching in Video CDNs: Building Strong Lines of Defense", EuroSys 2014, Apr. 13-16, 2014, Amsterdam, Netherlands. cited by applicant .
Morse, T.F., "Research Support for the Laboratory for Lightwave Technology." Brown Univ Providence RI Div of Engineering, 1992. cited by applicant .
Mruk, Joseph Rene, "Wideband monolithically integrated frontend subsystems and components", Diss. University of Colorado, 2011. cited by applicant .
Nachiketh, P. et al., "Optimizing public-key encryption for wireless clients", Proceedings of the IEEE International Conference on Communications (ICC 2002). No. 1. 2002. cited by applicant .
Narayanan, Arvind, "Fingerprinting of RFID Tags and HighTech Stalking." 33 Bits of Entropy, 33bits.org, Oct. 4, 2011. cited by applicant .
Nassa, Vinay Kumar, "Wireless Communications: Past, Present and Future", Dronacharya Research Journal: 50. vol. III, Issue--II, Jul.-Dec. 2011. cited by applicant .
Nibarger, John P., "An 84 pixel all-silicon corrugated feedhorn for CMB measurements." Journal of Low Temperature Physics 167.3-4 (2012): 522-527. cited by applicant .
Nicholson, Basil J., "Microwave Rotary Joints for X-, C-, and S-band", Battelle Memorial Inst Columbus OH, 1965. cited by applicant .
Nuvotronics, "PolyStrata--Phased Arrays & Antennas", Nuvotronics, nuvotronics.com http://www.nuvotronics.com/antennas.php, Apr. 26, 2015. cited by applicant .
Olver, A. D., "Microwave horns and feeds," vol. 39. IET, 1994., Book--description only, 1 page. cited by applicant .
Olver, A.D. et al., "Dielectric cone loaded horn antennas," Microwaves, Antennas and Propagation, IEE Proceedings H. vol. 135. No. 3. IET, 1988., Abstract Only, 1 page. cited by applicant .
Orfanidis, Sophocles J., "Electromagnetic waves and antennas," Rutgers University, 2002. cited by applicant .
Pahlavan, Kaveh et al., "Wireless data communications", Proceedings of the IEEE 82.9 (1994): 1398-1430. cited by applicant .
Patel, Shwetak N. et al., "The Design and Evaluation of an End-User-Deployable, Whole House, Contactless Power Consumption Sensor", CHI 2010: Domestic Life, Apr. 2010, 10 pages. cited by applicant .
Paul, Sanjoy et al., "The Cache-And-Forward Network Architecture for Efficient Mobile Content Delivery Services in the Future Internet", Innovations in NGN: Future Network and Services, 2008. K-INGN 2008. First ITU-T Kaleidoscope Academic Conference. cited by applicant .
Perkons, Alfred R. et al., "TM surface-wave power combining by a planar active-lens amplifier", Microwave Theory and Techniques, IEEE Transactions on 46.6 (1998): 775783. cited by applicant .
Peter, Zsolt et al., "Assessment of the current intensity for preventing ice accretion on overhead conductors", Power Delivery, IEEE Transactions on 22.1 (2007): 565-574. cited by applicant .
Petrovsky, Oleg, "The Internet of Things: A Security Overview", w.druva.com, Mar. 31, 2015. cited by applicant .
Pham, Tien-Thang et al., "A WDM-PON-compatible system for simultaneous distribution of gigabit baseband and wireless ultrawideband services with flexible bandwidth allocation", Photonics Journal, IEEE 3.1, 2011, 13-19. cited by applicant .
Piksa, Petr et al., "Elliptic and hyperbolic dielectric lens antennas in mmwaves", Radioengineering 20.1, 2011, 271. cited by applicant .
Plagemann, Thomas et al., "Infrastructures for community networks", Content Delivery Networks. Springer Berlin Heidelberg, 2008. 367-388. cited by applicant .
Pohl,, "A dielectric lens-based antenna concept for high-precision industrial radar measurements at 24GHz," Radar Conference (EuRAD), 2012 9th European, IEEE, 2012. cited by applicant .
Pranonsatit, S. et al., "Sectorised horn antenna array using an RF MEMS rotary switch", Asia-Pacific Microwave Conf., APMC. 2010. cited by applicant .
Pranonsatit, Suneat et al., "Single-pole eight-throw RF MEMS rotary switch", Microelectromechanical Systems, Journal of 15.6 (2006): 1735-1744. cited by applicant .
Prashant, R.R. et al., "Detecting and Identifying the Location of Multiple Spoofing Adversaries in Wireless Network", International Journal of Computer Science and Mobile Applications, vol. 2 Issue. 5, May 2014, 1-6. cited by applicant .
Rahim, S. K. A. et al., "Measurement of wet antenna losses on 26 GHz terrestrial microwave link in Malaysia", Wireless Personal Communications 64.2 (2012): 225231. cited by applicant .
Rambabu, K. et al., "Compact single-channel rotary joint using ridged waveguide sections for phase adjustment," IEEE Transactions on Microwave Theory and Techniques (Aug. 2003) 51(8):1982-1986., Abstract Only, 2 pages. cited by applicant .
Rappaport, Theodore S. et al., "Mobile's Millimeter-Wave Makeover", Spectrum.IEEE.Org; Sep. 2014. cited by applicant .
Raychaudhuri, Dipankar et al., "Emerging Wireless Technologies and the Future Mobile Internet", Cambridge University Press, Abstract Only, Mar. 2011, 1 page. cited by applicant .
Raychem,, "Wire and Cable", Dimensions 2 (1996): 1. cited by applicant .
Reynet, Olivier et al., "Effect of the magnetic properties of the inclusions on the high-frequency dielectric response of diluted composites." Physical Review B66.9 (2002): 094412. cited by applicant .
Rouse, Margaret, "Transport Layer Security (TLS)", TechTarget, searchsecurity.techtarget.com, Jul. 2006. cited by applicant .
Roze, Mathieu et al., "Suspended core subwavelength fibers: towards practical designs for low-loss terahertz guidance." Optics express 19.10 (2011): 9127-9138. cited by applicant .
Sagar, Nishant, "Powerline Communications Systems: Overview and Analysis", Thesis, May 2011, 80 pages. cited by applicant .
Sagues, Mikel et al., "Multi-tap complex-coefficient incoherent microwave photonic filters based on optical single-sideband modulation and narrow band optical filtering." Optics express 16.1 (2008): 295-303. cited by applicant .
Saied, Yosra Ben et al., "Trust management system design for the internet of things: a contextaware and multiservice approach", Computers & Security 39 (2013): 351365, Abstract Only, 2 pages. cited by applicant .
Salema, Carlos et al., "Solid dielectric horn antennas," Artech House Publishers, 1998. cited by applicant .
Salema, Carlos et al., "Solid dielectric horn antennas," Artech House Publishers, 1998, Amazon., Book--description only. cited by applicant .
Sarafi, A. et al., "Hybrid wireless-broadband over power lines: A promising broadband solution in rural areas." Communications Magazine, IEEE 47.11 (2009): 140-147. cited by applicant .
Sarafi, Angeliki M. et al., "Hybrid Wireless-Broadband over Power Lines: A Promising Broadband Solution in Rural Areas", IEEE Communications Magazine, Nov. 2009, 8 pages. cited by applicant .
Sarnecki, Joseph et al., "Microcell design principles", Communications Magazine, IEEE 31.4 (1993): 76-82. cited by applicant .
Saruhan, Ibrahim Halil, "Detecting and Preventing Rogue Devices on the Network", SANS Institute InfoSec Reading Room, sans.org, Aug. 8, 2007, 1 page. cited by applicant .
Scarfone, Karen et al., "Technical Guide to Information Security Testing and Assessment", National Institute of Standards and Technology, csrc.nist.gov, Special Publication, Sep. 2008, 800-115. cited by applicant .
Shafai, Lotfollah, "Dielectric Loaded Antennas", John Wiley & Sons, Inc., http://www.researchgate.net/publication/227998803.sub.--Dielectric.sub.--- Loaded.sub.--Antennas, Apr. 15, 2005. cited by applicant .
Shafi, Mansoor et al., "Advances in Propagation Modeling for Wireless Systems", EURASIP Journal on Wireless Communications and Networking. Hindawi Publishing Corp, 2009, p. 5. cited by applicant .
Shimabukuko, F.I. et al., "Attenuation measurement of very low-loss dielectric waveguides by the cavity resonator method in the millimeter wavelength range." No. TR-0086A (2925-06)-1. Aerospace Corp El Segundo CA Electronics Research Lab, 1989. cited by applicant .
Shindo, Shuichi et al., "Attenuation measurement of cylindrical dielectric-rod waveguide." Electronics Letters 12.5 (1976): 117-118. cited by applicant .
Shumate, Paul W. et al., "Evolution of fiber in the residential loop plant." IEEE Communications Magazine 29.3 (1991): 68-74. cited by applicant .
Sievenpiper, D.F. et al., "Two-dimensional beam steering using an electrically tunable impedance surface," in Antennas and Propagation, IEEE Transactions on, vol. 51, No. 10, pp. 2713-2722, Oct. 2003. cited by applicant .
Sommerfeld, A., "On the propagation of electrodynamic waves along a wire", Annals of Physics and Chemistry New Edition, vol. 67, No. 2, 1899, 72 pages. cited by applicant .
Strahler, Olivier, "Network Based VPNs", SANS Institute InfoSec Reading Room, sans.org, Aug. 2002. cited by applicant .
Strieby, M.E. et al., "Television transmission over wire lines." American Institute of Electrical Engineers, Transactions of the 60.12 (1941): 1090-1096., Abstract Only, 2 pages. cited by applicant .
Szabo, Csaba A., "European Broadband Initiatives with Public Participation", Broadband Services (2005): 255. cited by applicant .
Taboada, John M. et al., "Thermo-optically tuned cascaded polymer waveguide taps." Applied physics letters 75.2 (1999): 163-165. cited by applicant .
Templeton, Steven J. et al., "Detecting Spoofed Packets", DARPA Information Survivability Conference and Exposition, vol. 1, IEEE, 2003. cited by applicant .
Theoleyr, Fabrice, "Internet of Things and M2M Communications", books.google.com, ISBN13: 9788792982483, Apr. 17, 2013, Book--description only, 1 page. cited by applicant .
Thornton, John et al., "Modern lens antennas for communications engineering", vol. 39, 2013. cited by applicant .
Valladares, Cindy, "20 Critical Security Controls: Control 7--Wireless Device Control", Tripwire--The State of Security, tripwire.com, Mar. 21, 2013. cited by applicant .
Vogelgesang, Ralf et al., "Plasmonic nanostructures in aperture-less scanning near-field optical microscopy (aSNOM)", physica status solidi (b) 245.10 (2008): 22552260. cited by applicant .
Volat, C. et al., "De-icing/anti-icing techniques for power lines: current methods and future direction", Proceedings of the 11th International Workshop on Atmospheric Icing of Structures, Montreal, Canada. 2005. cited by applicant .
Wagter, Herman, "Fiber-to-the-X: the economics of last-mile fiber", ARS Technica, arstechnica.com,, Mar. 31, 2010. cited by applicant .
Wake, David et al., "Radio over fiber link design for next generation wireless systems", Lightwave Technology, Journal of28.16 (2010): 2456-2464. cited by applicant .
Wang, Jing et al., "The influence of optical fiber bundle parameters on the transmission of laser speckle patterns", Optics express 22.8, 2014, 8908-8918. cited by applicant .
Wilkins, George A., "Fiber Optic Telemetry in Ocean Cable Systems", Chapter in new edition of Handbook of Oceanographic Winch, Wire and Cable Technology, Alan H. Driscoll, Ed.,(to be published by University of Rhode Island) (1986). cited by applicant .
Wolff, Christian, "Phased Array Antenna" Radar Tutorial, web.archive.org, radartutorial.eu, Oct. 21, 2014. cited by applicant .
Wu, Xidong et al., "Design and characterization of singleand multiplebeam mmwave circularly polarized substrate lens antennas for wireless communications", Microwave Theory and Techniques, IEEE Transactions on 49.3, 2001, 431-441. cited by applicant .
Xi, Liu Xiao, "Security services in SoftLayer", Sep. 21, 2015. cited by applicant .
Xia, Cen et al., "Supermodes for optical transmission", Optics express 19.17, 2011, 16653-16664. cited by applicant .
"Power Line Sensor Networks for Enhancing Power Line Reliability and Utilization", Georgia Institute of Technology, https://smartech.gatech.edu/bitstream/handle/1853/41087/Yang.sub.--Yi.sub- .--201108.sub.--phd.pdf, Apr. 26, 2011, 264 pages. cited by applicant .
Yang, et al., "Power line sensornet--a new concept for power grid monitoring", IEEE Power Engineering Society General Meeting, Abstract Only, 2006, pp. 8. cited by applicant .
Yeh, C. et al., "Ceramic Waveguides." Interplanetary Network Progress Report141.26 (2000): 1. cited by applicant .
Yu, Shui et al., "Predicted packet padding for anonymous web browsing against traffic analysis attacks", Information Forensics and Security, IEEE Transactions on 7.4, http://nsp.org.au/syu/papers/tifs12.pdf, 2012, 1381-1393. cited by applicant .
Zelby, Leon W., "Propagation Modes on a Dielectric Coated Wire", J. The Franklin Institute, vol. 274(2), pp. 85-97, Aug. 1962. cited by applicant .
Zhao, et al., "Energy harvesting for a wireless-monitoring system of overhead high-voltage power lines", IET Generation, Transmission & Distribution 7, IEEE Xplore Abstract, 2013, 2 pages. cited by applicant .
Zheng, Zhu et al., "Efficient coupling of propagating broadband terahertz radial beams to metal wires", Optics express 21 .9 (2013): 1064210650. cited by applicant .
Zucker,, "Surface-wave antennas", Antenna engineering handbook 4, 2007. cited by applicant .
International Search Report and Written Opinion in PCT/US2016/028417, dated Jul. 5, 2016, 13 pages, Authorized officer Brigitte Bettiol. cited by applicant .
International Search Report PCT/US2016/036292 dated Sep. 13, 2016. cited by applicant .
PCT/US16/032441 International Search Report and Written Opinion dated Jul. 29, 2016. cited by applicant .
PCT/US16/036284 International Search Report & Written Opinion dated Sep. 8, 2016. cited by applicant .
PCT/US16/036388 International Search Report and Written Opinion dated Aug. 30, 2016. cited by applicant .
PCT/US2016/036285 International Search Report and Written Opinion dated Aug. 23, 2016. cited by applicant .
PCT/US2016/036288 International Search Report & Written Opinion dated Sep. 1, 2016. cited by applicant .
PCT/US2016/036290 International Search Report & Written Opinion dated Aug. 11, 2016. cited by applicant .
PCT/US2016/036293 International Search Report & Written Opinion dated Sep. 15, 2016. cited by applicant .
http://sdpm.arizona.edu/projects/project-public/upid/38a8cf3b42f35576de25d- elf6dcc20f3, Discloses a project to harvest energy from a power line and that a device was built that clamps onto a power line., 2016. cited by applicant .
"Alternative Local Loop Technologies: A Review", Organisation for Economic Co-Operation and Development, Paris, OCDE/GD(96)181, https://www.oecd.org/sti/2090965.pdf, 1996. cited by applicant .
"Broadband Over Power Lines (BPL): Developments and Policy Issues", Organisation for Economic Co-operation and Development, Directorate for Science, Technology and Industry, Committee for Information, Computer and Communications Policy, Jun. 2, 2009, 35 pages. cited by applicant .
"Broadband: Bringing Home the Bits: Chapter 4 Technology Options and Economic Factors", The National Academies Press, nap.edu, 2002. cited by applicant .
"Delivering broadband over existing wiring", Cabling Installation & Maintenance, cablinginstall.com, May 1, 2002. cited by applicant .
"Fast Numerical Modeling of a Conical Horns Lens Antenna", Comsol, comsol.com, Application ID: 18695, Sep. 16, 2016. cited by applicant .
"Harvest energy from powerline", https://www.physicsforums.com/threads/harvest-energy-from-powerline.68514- 8/, Discussion thread about harvesting power from powerlines that includes the suggestion of clamping a device to the power line., 2013. cited by applicant .
"International Search Report & Written Opinion", PCT/US2016/036286. cited by applicant .
"International Search Report & Written Opinion", PCT/US16/033182, dated Jul. 12, 2016. cited by applicant .
"International Search Report & Written Opinion", PCT/US2016/036551, dated Aug. 11, 2016. cited by applicant .
"International Search Report & Written Opinion", PCT/US2016/036798, dated Aug. 11, 2016. cited by applicant .
"International Search Report & Written Opinion", PCT/US2016/028205, dated Aug. 16, 2016. cited by applicant .
"International Search Report & Written Opinion", PCT/US2016/032460, dated Aug. 17, 2016. cited by applicant .
"International Search Report & Written Opinion", PCT/US2016/036303, dated Aug. 24, 2016. cited by applicant .
"International Search Report & Written Opinion", PCT/2016/035383, dated Sep. 2, 2016. cited by applicant .
"International Search Report and Written Opinion", PCT/US2016/036289, dated Aug. 11, 2016. cited by applicant .
"International Search Report and Written Opinion", PCT/US2016/036295, dated Aug. 30, 2016. cited by applicant .
"International Search Report and Written Opinion", PCT/US2016/030964, dated Aug. 4, 2016. cited by applicant .
"International Search Report and Written Opinion", PCT/US2016/036553, dated Aug. 30, 2016, 1-14. cited by applicant .
"International Search Report and Written opinion", PCT/US2016/036556, dated Sep. 22, 2016. cited by applicant .
"Invitation to Pay Additional Fees & Partial Search Report", PCT/US2016/028205, dated Jun. 22, 2016. cited by applicant .
"Invitation to Pay Additional Fees & Partial Search Report", PCT/US2016/032430, dated Jun. 22, 2016. cited by applicant .
"Invitation to Pay Additional Fees and, Where Applicable, Protest Fee", PCT/US2016/035384, Aug. 31, 2016, 7 pages. cited by applicant .
"Lens Antennas", Altair, feko.info, Jun. 30, 2014, 2 pages. cited by applicant .
"Micromem Demonstrates UAV Installation of Power Line Monitoring Mounting System", MicroMem, micromem.com, Mar. 4, 2015, 1-3. cited by applicant .
"PCT Search Report and Written opinion", PCT/US2016/036297, Sep. 5, 2016. cited by applicant .
"Troubleshooting Problems Affecting Radio Frequency Communication", cisco.com, Oct. 19, 2009. cited by applicant .
"Waveguide Bragg Microcavity", lumerical.com, Sep. 2016. cited by applicant .
Adabo, Geraldo J., "Long Range Unmanned Aircraft System for Power Line Inspection of Brazilian Electrical System", Journal of Energy and Power Engineering 8 (2014), Feb. 28, 2014, 394-398. cited by applicant .
Barlow, H. M. et al., "Surface Waves", 621.396.11 : 538.566, Paper No. 1482 Radio Section, 1953, pp. 329-341. cited by applicant .
Benevent, Evangeline, "Transmission lines in MMIC technology", Universita Mediterranea di Reggio Calabria, Jan. 28, 2010. cited by applicant .
Berweger, Samuel et al., "Light on the Tip of a Needle: Plasmonic Nanofocusing for Spectroscopy on the Nanoscale", The Journal of Physical Chemistry Letters; pubs.acs.org/JPCL, 2012, 945-952. cited by applicant .
Blattenberger, Kirt, "DroneBased Field Measurement System.TM. (dBFMS).TM.," RF Cafe, rfcafe.com, Jul. 29, 2014. cited by applicant .
Brambilla, Gilberto et al., "Ultra-low-loss optical fiber nanotapers", Optoelectronics Research Centre, University of Southampton; http://www.orc.soton.ac.uk, vol. 12, No. 10, May 7, 2004, 2258-2263. cited by applicant .
Capece, P. et al., "FDTD Analysis of a Circular Coaxial Feeder for Reflector Antenna", Antennas and Propagation Society International Symposium, IEEE Digest, vol. 3, 1997, pp. 1570-1573. cited by applicant .
Chandra, Shekar, "Transmission Line Fault Detection & Indication through GSM", IRD India, ISSN (Online): 2347-2812, vol. 2, Iss. 5, 2014. cited by applicant .
Choudhury, Romit R., "Utilizing Beamforming Antennas for Wireless Mult-hop Networks", www.slideserve.com, Sep. 20, 2012. cited by applicant .
Chu, Eunmi et al., Self-organizing and self-healing mechanisms in cooperative small cell networks. PIMRC. 2013. cited by applicant .
Cliff, Oliver M. et al., "Online localization of radio-tagged wildlife with an autonomous aerial robot system," Proceedings of Robotics Science and Systems XI (2015): 1317. cited by applicant .
Daniel, Kai et al., "Using Public Network Infrastructures for UAV Remote Sensing in Civilian Security Operations", Homeland Security Affairs, Supplement 3, Mar. 2011, 11 pages. cited by applicant .
De Freitas, Carvalho et al., "Unmanned Air Vehicle Based Localization and Range Estimation of WiFi Nodes." (2014). cited by applicant .
Deng, Chuang et al., "Unmanned Aerial Vehicles for Power Line Inspection: A Cooperative Way in Platforms and Communications", Journal of Communicatinos vol. No. 9, No. 9, Sep. 2014, 687-692. cited by applicant .
Doshi, D.A. et al., "Real Time Fault Failure Detection in Power Distribution Line using Power Line Communication", International Journal of Engineering Science 4834, 2016. cited by applicant .
Elmore, Glenn et al., "A Surface Wave Transmission Line", QEX, May/Jun. 2012, pp. 3-9. cited by applicant .
Farzaneh, Masoud et al., "Systems for Prediction and Monitoring of Ice Shedding, Anti-Cicing and De-Icing for Power Line Conductors and Ground Wires", Dec. 1, 2010, 1-100. cited by applicant .
Feng, Wei et al., Downlink power allocation for distributed antenna systems in a multi-cell environment. 2009 5th International Conference on Wireless Communications, Networking and Mobile Computing. IEEE, 2009., 2009. cited by applicant .
Fenn, Alan J. et al., "A Terrestrial Air Link for Evaluating Dual-Polarization Techniques in Satellite Communications", vol. 9, No. 1, The Lincoln Laboratory Journal, 1996, 3-18. cited by applicant .
Fitzgerald, William D., "A 35-GHz Beam Waveguide System for the Millimeter-Wave Radar", The Lincoln Laboratory Journal, vol. 5, No. 2, 1992, 245-272. cited by applicant .
Ford, Steven, At&T's new antenna system will boost cellular coverage at Walt Disney World. Orlando Sentinel, orlandosentinel.com, Mar. 9, 2014., 2014. cited by applicant .
Friedman, M et al., "Low-Loss RF Transport Over Long Distances", IEEE Transactions on Microwave Theory and Techniques, vol. 49, No. 2, Feb. 2001, 8 pages. cited by applicant .
Geterud, Erik, "Design and Optimization of Wideband Hat-Fed Reflector Antenna with Radome for Satellite Earth Station", http://publications.lib.chalmers.se/records/fulltext/163718.pdf, Discloses Frequency Selective Surfaces for antenna coverings for weather protection (table of materials on p. 29-30; pp. 37-46)., 2012. cited by applicant .
Gloeckler, R, "Phased Array for Millimeter Wave Frequencies", International Journal of Infrared and Millimeter Waves, Springer, vol. 11, No. 2, Feb. 1, 1990. cited by applicant .
Hadi, Ghozali S. et al., "Autonomous UAV System Development for Payload Dropping Mission", The Journal of Instrumentation, Automation and Systems, vol. 1, No. 2, 2014, pp. 72-22. cited by applicant .
Haider, Muhammad Kumail et al., Mobility resilience and overhead constrained adaptation in directional 60 GHz WLANs: protocol design and system implementation. Proceedings of the 17th ACM International Symposium on Mobile Ad Hoc Networking and Computing. ACM, 2016., 2016. cited by applicant .
Hanashi, Abdalla M. et al., "Effect of the Dish Angle on the Wet Antenna Attenuation", IEEE, 2014, 1-4. cited by applicant .
Heo, Joon et al., "Identity-Based Mutual Device Authentication Schemes for PLC Systems", IEEE International Symposium on Power Line Communications and Its Applications, 2008, pp. 47-51. cited by applicant .
Howard, Courtney, "UAV command, control & communications", Military & Aerospace Electronics, militaryaerospace.com, Jul. 11, 2013, 15 pages. cited by applicant .
James, J. R. et al., "Investigations and Comparisons of New Types of Millimetre-Wave Planar Arrays Using Microstrip and Dielectric Structures", Royal Military College of Science, Apr. 1985, 122 pages. cited by applicant .
Jones, Jr., Howard S., "Conformal and Small Antenna Designs", U.S. Army Electronics Research and Development Command, Harry Diamond Laboratories, Apr. 1981, 32 pages. cited by applicant .
Katrasnik, Jaka, "New Robot for Power Line Inspection", 2008 IEEE Conference on Robotics, Automation and Mechatronics, 2008, 1-6. cited by applicant .
Kima, Yi-Gon et al., "Generating and detecting torsional guided waves using magnetostrictive sensors of crossed coils", Chonnam National University, Republic of Korea, Elsevier Ltd,, 2010. cited by applicant .
Kliros, George, "Dielectric-EBG covered conical antenna for UWB applications", https://www.researchgate.net/profile/George.sub.--Kliros/publication/2353- 22849.sub.--Dielectric-EBG.sub.--covered.sub.--conical.sub.--antenna.sub.-- -for.sub.--UWB.sub.--applications/links/54329e410cf225bddcc7c037.pdf, Disclosing a quasi-planar wideband conical antenna coated with alternating high- and low-permittivity dielectric spherical shells (Section 2; Figure 1 on the 3rd Page)., 2010. cited by applicant .
Kune, Denis F. et al., "Ghost Talk: Mitigating EMI Signal Injection Attacks against Analog Sensors", 2013 IEEE Symposium on Security and Privacy, 145-159. cited by applicant .
Lee, Joseph C., "A Compact Q-/K-Band Dual Frequency Feed Horn", No. TR-645, Massachusetts Institute of Technology, Lincoln Laboratory, May 5, 1983, 40 pages. cited by applicant .
Li, Xi et al., A FCM-Based peer grouping scheme for node failure recovery in wireless P2P file sharing. 2009 IEEE International Conference on Communications. IEEE, 2009., 2009. cited by applicant .
Liu, et al., A 25 Gb/s (/km 2) urban wireless network beyond IMTadvanced. IEEE Communications Magazine 49.2 (2011): 122-129. cited by applicant .
Matsukawa, et al., A dynamic channel assignment scheme for distributed antenna networks. Vehicular Technology Conference (VTC Spring), 2012 IEEE 75th. IEEE, 2012. cited by applicant .
Meessen, A., "Production of EM Surface Waves by Superconducting Spheres: A New Type of Harmonic Oscillators", Progress in Electromagnetics Research Symposium Proceedings, Moscow, Russia, Aug. 19-23, 2012, pp. 529-533. cited by applicant .
Miller, David A., "Establishing Optimal Wave Communication Channels Automatically", Journal of Lightwave Technology, vol. 31, No. 24, Dec. 15, 2013, 3987-3994. cited by applicant .
Mushref, Muhammad, "Matrix solution to electromagnetic scattering by a conducting cylinder with an eccentric metamaterial coating", http://www.sciencedirect.com/science/article/pii/S0022247X06011450/pdf?md- 5=4823be0348a3771b5cec9ffb7f326c2c&pid=1-s2.0-S0022247X06011450-main.pdf, Discloses controlling antenna radiation pattern with coatings, 2007. cited by applicant .
Nakano, Hisamatsu, "http://repo.lib.hosei.ac.jp/bitstream/10114/3835/1/31.sub.--TAP(Low-Prof- ile).pdf", Discloses affecting radiation patterns with alternating high- and low-permittivity dielectric shell coatings and formulae for dterimining the results (Figures 2-5 on p. 1865)., 2000. cited by applicant .
Nikitin, A. Y. et al., "Efficient Coupling of Light to Graphene Plasmons by Compressing Surface Polaritons with Tapered Bulk Materials", NanoLetters; pubs.acs.org/NanoLett, Apr. 28, 2014, 2896-2901. cited by applicant .
Pato, et al., On building a distributed antenna system with joint signal processing for next generation wireless access networks: The FUTON approach. 7th Conference on Telecommunications, Portugal. 2008. cited by applicant .
Pike, Kevin J. et al., "A spectrometer designed for 6.7 and 14.1 T DNP-enhanced solid-state MAS NMR using quasi-optical microwave transmission", Journal of Magnetic Resonance, 2012, 9 pages. cited by applicant .
Rangan, Sundeep et al., "Millimeter-Wave Cellular Wireless Networks: Potentials and Challenges", Proceedings of the IEEE, vol. 102, No. 3, Mar. 2014, 366-385. cited by applicant .
Rangel, Rodrigo K. et al., "Sistema de Inspecao de Linhas de Transmissao de Energia Electrica Utilizando Veiculos Aereos Nao-Tripulados", Sep. 14-16, 2009, 1-9. cited by applicant .
Ren-Bin, Zhong et al., "Surface plasmon wave propagation along single metal wire", Chin. Phys. B, vol. 21, No. 11, May 2, 2012, 9 pages. cited by applicant .
Rosenberg, Uwe et al., "A novel frequency-selective power combiner/divider in single-layer substrate integrated waveguide technology", IEEE Microwave and Wireless Components Letters, vol. 23, No. 8, Aug. 2013, 406-408. cited by applicant .
Scerri, Paul et al., "Geolocation of RF emitters by many UAVs," AIAA Infotech@ Aerospace 2007 Conference and Exhibit, 2007. cited by applicant .
Shankland, Steven, "Lowly DSL poised for gigabit speed boost", C|Net, cnet.com, Oct. 21, 2014. cited by applicant .
Silver, Ralph U., "Local Loop Overview", National Communications System (NCS), BellSouth Network Training, newnetworks.com, Aug. 2016. cited by applicant .
Spencer, D G., "Novel Millimeter ACC Antenna Feed", IEEE Colloquium on Antennas for Automotives, Mar. 10, 2000. cited by applicant .
Sundqvist, Lassi, "Cellular Controlled Drone Experiment: Evaluation of Network Requirements," (2015). cited by applicant .
Szczys, Mike, "Cameras Perch on Power Lines, Steal Electricity", http://hackaday.com/2010/06/28/cameras-perch-on-power-lines-steal-electri- city/, Discloses cameras that clamp on to power lines and use induction as a power source., 2010. cited by applicant .
Talbot, David, "Adapting Old-Style Phone Wires for Superfast Internet", Adapting Old-Style Phone Wires for Superfast Internet, Jul. 30, 2013. cited by applicant .
Tantawi, Sami G. et al., "High-power multimode X-band rf pulse compression system for future linear colliders", Physical Review Special Topics--Accelerators and Beams, 1098-4402/05/8(4)/042002, 2005, 19 pages. cited by applicant .
Teng, Ervin et al., "Aerial Sensing and Characterization of ThreeDimensional RF Fields," Univ. at Buffalo, cse.buffalo.edu, accessed: Sep. 2016. cited by applicant .
Wang, Wei, "Optimization Design of an Inductive Energy Harvesting Device for Wireless Power Supply System Overhead High-Voltage Power Lines", https://pdfs.semanticscholar.org/3941/601af7a21d55e8b57ab0c50d5f1d9f9f686- 8.pdf, Discloses an induction based energy harvesting device that takes energy from overhead powerlines (Figure 4)., 2016. cited by applicant .
Werner, Louis B. et al., "Operation Greenhouse", Scientific Director's Report of Atomic Weapon Tests at Eniwetok, Annex 6.7 Contimation-Decontamination Studies Naval Radiological Defense Lab, 1951. cited by applicant .
Wolfe, Victor et al., "Feasibility Study of Utilizing 4G LTE Signals in Combination With Unmanned Aerial Vehicles for the Purpose of Search and Rescue of Avalanche Victims (Increment 1)", University of Colorado at Boulder, Research Report, 2014, 26 pages. cited by applicant .
Yeh, C. et al., "Thin-Ribbon Tapered Coupler for Dielectric Waveguides", May 15, 1994, 42-48. cited by applicant .
Yilmaz, et al., Self-optimization of coverage and capacity in LTE using adaptive antenna systems. Diss. Aalto University, 2010. cited by applicant .
Int'l Preliminary Report on Patentability for PCT/US15/034827 dated Mar. 9, 2017. cited by applicant .
"AirCheck G2 Wireless Tester", NetScout.RTM., enterprise.netscout.com, Dec. 6, 2016, 10 pages. cited by applicant .
"Brackets, Conduit Standoff", Hubbell Power Systems, Inc., hubbellpowersystems.com, Dec. 2, 2010, 2 pages. cited by applicant .
"Cisco Aironet 1500 Series Access Point Large Pole Mounting Kit Instructions", www.cisco.com/c/en/us/td/docs/wireless/antenna/installation/guide/18098.h- tml, 2008, 9 pages. cited by applicant .
"Doubly-fed Cage-cone Combined Broadband Antennas for Marine Applications", http://www.edatop.com/down/paper/antenna/%E5%A4%A9%E7%BA%BF%E8%AE%BE%E8%A- E%A1-890w5nebp5ilpq.pdf, 2007, 7 pages. cited by applicant .
"Dual Band Switched-Parasitic Wire Antennas for Communications and Direction Finding", www.researchgate.net/profile/David.sub.--Thiel2/publication/3898574.sub.-- -Dual.sub.--band.sub.--switched-parasitic.sub.--wire.sub.--antennas.sub.--- for.sub.--communications.sub.--and.sub.--direction.sub.--finding/links/0fc- fd5091b4273ce54000000.pdf, 2000, 5 pages. cited by applicant .
"Electronic Countermeasure (ECM) Antennas", vol. 8, No. 2, Apr. 2000, 2 pages. cited by applicant .
"International Preliminary Report on Patentability", PCT/US16/20001, dated Feb. 17, 2017, 1-14. cited by applicant .
"International Search Report & Written Opinion", PCT/US2016/035384, dated Oct. 31, 2016. cited by applicant .
"International Search Report & Written Opinion", PCT/US2016/040992, dated Oct. 17, 2006. cited by applicant .
"International Search Report & Written Opinion", PCT/US16/050488, dated Nov. 11, 2016. cited by applicant .
"International Search Report & Written Opinion", PCT/US16/50345, dated Nov. 15, 2016. cited by applicant .
"International Search Report & Written Opinion", PCT/US2016/050346, dated Nov. 17, 2016. cited by applicant .
"International Search Report & Written Opinion", PCT/US2016/050860, dated Nov. 17, 2016, 11 pages. cited by applicant .
"International Search Report & Written Opinion", PCT/US2016/050344, dated Nov. 25, 2016, 16 pages. cited by applicant .
"International Search Report and Written Opinion", PCT/US2016/046315, dated Nov. 3, 2016. cited by applicant .
"International Search Report and Written Opinion", PCT/US2016/050039, dated Nov. 14, 2016. cited by applicant .
"International Search Report and Written Opinion", PCT/US2016/050347, dated Nov. 15, 2016. cited by applicant .
"International Search Report and Written Opinion", PCT/US2016/051217, dated Nov. 29, 2016. cited by applicant .
"Newsletter 4.4--Antenna Magus version 4.4 released!", antennamagus.com, Aug. 10, 2013, 8 pages. cited by applicant .
"PCT International Search Report", PCT/US2016/057161, PCT International Search Report and Written Opinion, dated Jan. 12, 2017, 1-13, dated Jan. 12, 2017, 1-13. cited by applicant .
"PCT/US2016/041561, PCT International Search Report and Written Opinion", dated Oct. 10, 2016, 1-15. cited by applicant .
"PCT/US2016/046323, PCT International Search Report", dated Oct. 24, 2016, 1-13. cited by applicant .
"Technology Brief 13: Touchscreens and Active Digitizers", https://web.archive.org/web/20100701004625/http://web.engr.oregonstate.ed- u/.about.moon/engr203/read/read4.pdf, 2010, 289-311. cited by applicant .
"The world's first achievement of microwave electric-field measurement utilizing an optical electric-field sensor mounted on an optical fiber, within a microwave discharge ion engine boarded on asteroid explorers etc.", Investigation of internal phenomena and performance improvement in microwave discharge ion engines, Japan Aerospace Exploration Agency (JAXA), Nippon Telegraph and Telephone Corporation, Aug. 7, 2013, 4 pages. cited by applicant .
Al-Ali, A.R. et al., "Mobile RFID Tracking System", Information and Communication Technologies: From Theory to Applications, ICTTA 2008, 3rd International Conference on IEEE, 2008, 4 pages. cited by applicant .
Alam, M. N. et al., "Novel Surface Wave Exciters for Power Line Fault Detection and Communications", Department of Electrical Engineering, University of South Carolina, Antennas and Propagation (APSURSI), 2011 IEEE International Symposium, IEEE, 2011, 1-4. cited by applicant .
Alaridhee, T. et al., "Transmission properties of slanted annular aperture arrays. Giant energy deviation over sub-wavelength distance", Optics express 23.9, 2015, 11687-11701. cited by applicant .
Ali, Tariq et al., "Diagonal and Vertical Routing Protocol for Underwater Wireless Sensor Network", Procedia--Social and Behavioral Sciences 129, 2014, 372-379. cited by applicant .
Allen, Jeffrey et al., "New Concepts in Electromagnetic Materials and Antennas", Air Force Research Laboratory, Jan. 2015, 80 pages. cited by applicant .
Amirshahi, P. et al., "Transmission channel model and capacity of overhead multiconductor mediumvoltage powerlines for broadband communications", Consumer Communications and Networking Conference, 2005, 5 pages. cited by applicant .
Amt, John H. et al., "Flight Testing of a Pseudolite Navigation System on a UAV", Air Force Institute of Technology: ION Conference, Jan. 2007, 9 pages. cited by applicant .
Antennamagus, "Parabolic focus pattern fed reflector with shroud", antennamagus.com, Jul. 4, 2014, 2 pages. cited by applicant .
Ares-Pena, Francisco J. et al., "A simple alternative for beam reconfiguration of array antennas", Progress in Electromagnetics Research 88, 2008, 227-240. cited by applicant .
Ascom, "TEMS Pocket--a Complete Measurement Smartphone System in your Hand", http://www.ascom.us/us-en/tems.sub.--pocket.sub.--14.0.sub.--featu- re.sub.--specific.sub.--datasheet.pdf, 2014, 2 pages. cited by applicant .
A-Tech Fabrication, "Dual Antenna Boom Assembly", http://web.archive.org/web/20090126192215/http://atechfabrication.com/pro- ducts/dual.sub.--antenna.sub.--boom.htm, 2009, 2 pages. cited by applicant .
Baanto,, "Surface Acoustive Wave (SAW) Touch Screen", http://baanto.com/surface-acoustic-wave-saw-touch-screen, 2016, 4 pages. cited by applicant .
Babakhani, Aydin, "Direct antenna modulation (DAM) for on-chip mm-wave transceivers", Diss. California Institute of Technology, 2008, 2 pages. cited by applicant .
Barnes, Heidi et al., "DeMystifying the 28 Gb/s PCB Channel: Design to Measurement", Design Con. 2014, Feb. 28, 2014, 54 pages. cited by applicant .
Benkhelifa, Elhadj, "User Profiling for Energy Optimisation in Mobile Cloud Computing", 2015, 1159-1165. cited by applicant .
Blanco-Redondo, Andrea et al., "Coupling midinfrared light from a photonic crystal waveguide to metallic transmission lines", Applied Physics Letters 104.1, 2014, 6 pages. cited by applicant .
Briso-Rodriguez, "Measurements and Modeling of Distributed Antenna Systems in Railway Tunnels", IEEE Transactions on Vehicular Technology, vol. 56, No. 5, Sep. 2007, 2870-2879. cited by applicant .
Budde, Matthias, "Using a 2DST Waveguide for Usable, Physically Constrained Out-of-Band Wi-Fi Authentication", https://pdfs.semanticscholar.org/282e/826938ab7170c198057f9236799e92e2121- 9.pdf, 2013, 8 pages. cited by applicant .
Campista, Miguel E. et al., "Improving the Data Transmission Throughput Over the Home Electrical Wiring", The IEEE Conference on Local Computer Networks 30th Anniversary, 2005, 1-8. cited by applicant .
Chaimae, Elmakfalji et al., "New Way of Passive RFID Deployment for Smart Grid", Journal of Theoretical and Applied Information Technology 82.1, Dec. 10, 2015, 81-84. cited by applicant .
Chen, KE et al., "Geometric phase coded metasurface: from polarization dependent directive electromagnetic wave scattering to diffusionlike scattering", Scientific Reports 6, 2016, 1-10. cited by applicant .
Collins, D.D. et al., "Final Report on Advanced Antenna Design Techniques", GER 11246, Report No. 4, Sep. 6, 1963, 1-70. cited by applicant .
Crisp, , "Uplink and Downlink Coverage Improvements of 802.11g Signals Using a Distributed Antenna Network", Journal of Lightwave Technology ( vol. 25, Issue: 11), Dec. 6, 2007, 1-4. cited by applicant .
Crosswell, "Aperture excited dielectric antennas", http://ntrs.nasa.gov/archive/nasa/casi.ntrs.nasa.gov/19740017567.pdf, 1974, 128 pages. cited by applicant .
Curry, James M., "A Web of Drones: A 2040 Strategy to Reduce the United States Dependance on Space Based Capabilities", Air War College, Feb. 17, 2015, 34 pages. cited by applicant .
Debord, Benoit et al., "Generation and confinement of microwave gas-plasma in photonic dielectric microstructure", Optics express 21.21, 2013, 25509-25516. cited by applicant .
Deilmann, Michael, "Silicon oxide permeation barrier coating and sterilization of PET bottles by pulsed low-pressure microwave plasmas", Dissertation, 2008, 142 pages. cited by applicant .
Dyson, John D. "The Equiangular Spiral Antenna", IRE Transactions on Antennas and Propagation, 1959, 181-187. cited by applicant .
Earth Data, "Remote Sensors", NASA, earthdata.nasa.gov, Oct. 17, 2016, 36 pages. cited by applicant .
Eizo, "How can a screen sense touch? A basic understanding of touch panels", www.eizo.com/library/basics/basic.sub.--understanding.sub.--of.s- ub.--touch.sub.--panel, Sep. 27, 2010, 8 pages. cited by applicant .
Ekstrom, "Slot-line end-fire antennas for THz frequencies", Third International Symposium on Space Terahertz Technology, 280-290. cited by applicant .
Emerson, "About Rosemount 5300 Level Transmitter", www.emerson.com, Nov. 2016, 6 pages. cited by applicant .
Eom, Seung-Hyun et al., "Pattern switchable antenna system using inkjet-printed directional bow-tie for bi-direction sensing applications", Sensors 15.12, 2015, 31171-31179. cited by applicant .
Faggiani, Adriano, "Smartphone-based crowdsourcing for network monitoring: opportunities, challenges, and a case study", http://vecchio.iet.unipi.it/vecchio/files/2010/02/article.pdf, 2014, 8 pages. cited by applicant .
Fattah, E. Abdel et al., "Numerical 3D simulation of surface wave excitation in planar-type plasma processing device with a corrugated dielectric plate", Elsevier, Vacuum 86, 2011, 330-334. cited by applicant .
Fiorelli, Riccardo et al., "ST7580 power line communication systemonchip design guide", Doc ID 022923 Rev 2, Jul. 2012, 63 pages. cited by applicant .
Galli,, "For the Grid and Through the Grid: The Role of Power Line Communications in the Smart Grid", Proceedings of the IEEE 99.6, Jun. 2011, 1-26. cited by applicant .
Gerini, Giampiero, "Multilayer array antennas with integrated frequency selective surfaces conformal to a circular cylindrical surface", http://alexandria.tue.nl/openaccess/Metis248614.pdf, 2005, 2020-2030. cited by applicant .
Gilbert, Barrie et al., "The Gears of Genius", IEEE SolidState Circuits Newsletter 4.12, 2007, 10-28. cited by applicant .
Godara, "Applications of Antenna Arrays to Mobile Communications, Part I: Performance Improvement, Feasibility, and System Considerations", Proceedings of the IEEE, vol. 85, No. 7, Jul. 1997, 1031-1060. cited by applicant .
Goubau, Georg et al., "Investigation of a Surface-Wave Line for Long Distance Transmission", 1952, 263-267. cited by applicant .
Goubau, Georg et al., "Investigations with a Model Surface Wave Transmission Line", IRE Transactions on Antennas and Propagation, 1957, 222-227. cited by applicant .
Goubau, Georg, "Open Wire Lines", IRE Transactions on Microwave Theory and Techniques, 1956, 197-200. cited by applicant .
Goubau, Georg, "Single-Conductor Surface-Wave Transmission Lines", Proceedings of the I.R.E., 1951, 619-624. cited by applicant .
Goubau, Georg, "Surface Waves and Their Application to Transmission Lines", Radio Communication Branch, Coles Signal Laboratory, Mar. 10, 1950, 1119-1128. cited by applicant .
Goubau, Georg, "Waves on Interfaces", IRE Transactions on Antennas and Propagation, Dec. 1959, 140-146. cited by applicant .
Greco, R, "Soil water content inverse profiling from single TDR waveforms", Journal of hydrology 317.3, 2006, 325-339. cited by applicant .
Gunduz, Deniz et al., "The multiway relay channel", IEEE Transactions on Information Theory 59.1, 2013, 5163. cited by applicant .
Guo, Shuo et al., "Detecting Faulty Nodes with Data Errors for Wireless Sensor Networks", 2014, 25 pages. cited by applicant .
Hafeez, "Smart Home Area Networks Protocols within the Smart Grid Context", Journal of Communications vol. 9, No. 9, Sep. 2014, 665-671. cited by applicant .
Halder, Achintya et al., "Low-cost alternate EVM test for wireless receiver systems", 23rd IEEE VLSI Test Symposium (VTS'05), 2005, 6 pages. cited by applicant .
Hale, Paul et al., "A statistical study of deembedding applied to eye diagram analysis", IEEE Transactions on Instrumentation and Measurement 61.2, 2012, 475-488. cited by applicant .
Halligan, Matthew S., "Maximum crosstalk estimation and modeling of electromagnetic radiation from PCB/highdensity connector interfaces", http://scholarsmine.mst.edu/cgi/viewcontent.cgiarticle=3326&context=docto- ral.sub.--dissertations, 2014, 251 pages. cited by applicant .
Hays, Phillip, "SPG-49 Tracking Radar", www.okieboat.com/SPG-49%20description.html, 2015, 15 pages. cited by applicant .
Hussain, Mohamed T. et al., "Closely Packed Millimeter-Wave MIMO Antenna Arrays with Dielectric Resonator Elements", Antennas and Propagation (EuCAP) 2016 10th European Conference, Apr. 2016, 1-5. cited by applicant .
Huth, G. K., "Integrated source and channel encoded digital communication system design study", http://ntrs.nasa.gov/archive/nasa/casi.ntrs.nasa.gov/19750003064.pdf, 1974, 65 pages. cited by applicant .
Ikrath, K. et al., "Antenna Innovation Glass-Fiber Tube Focuses Microwave Beam", Electronics, vol. 35, No. 38, Sep. 21, 1962, 44-47. cited by applicant .
Illinois Historic Archive, "Antennas on the Web", Photo Archive of Antennas, ece.illinois.ed, 1-18, Dec. 2016. cited by applicant .
Islam, M. T. "Coplanar Waveguide Fed Microstrip Patch Antenna", Information Technology Journal 9.2 (2010): 367-370., 2010, 367-370. cited by applicant .
James, Graeme L. et al., "Diplexing Feed Assemblies for Application to Dual-Reflector Antennas", IEEE Transactions on Antennas and Propagation, vol. 51, No. 5, May 2003, 1024-1029. cited by applicant .
Japan Patent Office, "JP Office Action dated Feb. 14, 2017", Feb. 14, 2017, 1-12. cited by applicant .
Jensen, Michael "Data-Dependent Fingerprints for Wireless Device Authentication", www.dtic.mil/cgi-bin/GetTRDoc?AD=ADA626320, 2014, 15 pages. cited by applicant .
Jiang, Peng, "A New Method for Node Fault Detection in Wireless Sensor Networks", 2009, 1282-1294. cited by applicant .
Jiang, Y.S. et al., "Electromagnetic orbital angular momentum in remote sensing", PIERS Proceedings, Moscow, Russia, Aug. 18-21, 2009, 1330-1337. cited by applicant .
Kado, Yuichi et al., "Exploring SubTHz Waves for Communications, Imaging, and Gas Sensing", Fog 2: O2, PIERS Proceedings, Beijing, China, Mar. 23-27, 2009, 42-47. cited by applicant .
Karbowiak, A. E. et al., "Characteristics of Waveguides for Long-Distance Transmission", Journal of Research of the National Bureau of Standards, vol. 65D, No. 1, Jan.-Feb. 1961, May 23, 1960, 75-88. cited by applicant .
Kedar,, "Wide Beam Tapered Slot Antenna for Wide Angle Scanning Phased Array Antenna", Progress in Electromagnetics Research B, vol. 27, 2011, 235-251. cited by applicant .
Khan, Kaleemullah, "Authentication in Multi-Hop Wireless Mesh Networks", World Academy of Science, Engineering and Technology, International Journal of Electrical, Computer, Energetic, Electronic and Communication Engineering vol. 2, No. 10, 2008, 2406-2411. cited by applicant .
Khan, Mohammed R., "A beam steering technique using dielectric wedges", Diss. University of London, Dec. 1985, 3 pages. cited by applicant .
Kim, Jong-Hyuk et al., "Real-time Navigation, Guidance, and Control of a UAV using Low-cost Sensors", Australian Centre for Field Robotics, Mar. 5, 2011, 6 pages. cited by applicant .
Kim, Myungsik et al., "Automated RFID-based identification system for steel coils", Progress in Electromagnetics Research 131, 2012, 1-17. cited by applicant .
Kleinrock, Leonard et al., "On measured behavior of the ARPA network", National Computer Conference, 1974, 767-780. cited by applicant .
Koga, Hisao et al., "High-Speed Power Line Communication System Based on Wavelet OFDM", 7th International Symposium on Power-Line Communications and Its Applications, Mar. 26-28, 2003, 226-231. cited by applicant .
Kolpakov, Stanislav A. et al., "Toward a new generation of photonic humidity sensors", Sensors 14.3, 2014, 3986-4013. cited by applicant .
Kuehn, E, "Self-configuration and self-optimization of 4G Radio Access Networks", http://wirelessman.org/tgm/contrib/S80216m-07.sub.--169.pdf, 2007, 13 pages. cited by applicant .
Kumar, Sumeet et al., "Urban street lighting infrastructure monitoring using a mobile sensor platform", IEEE Sensors Journal, 16.12, 2016, 4981-4994. cited by applicant .
Lairdtech, "Allpurpose Mount Kit", www.lairdtech.com, Mar. 29, 2015, 2 pages. cited by applicant .
Lazaropoulos, Athanasios, "TowardsModal Integration of Overhead and Underground Low-Voltage and Medium-Voltage Power Line Communication Channels in the Smart Grid Landscape:Model Expansion, Broadband Signal Transmission Characteristics, and Statistical Performance Metrics", International Scholarly Research Network, ISRN Signal Processing, vol. 2012, Article ID 121628, 17 pages, Mar. 26, 2012, 18 pages. cited by applicant .
Lazaropoulos, Athanasios G., "Wireless sensor network design for transmission line monitoring, metering, and controlling: introducing broadband over power lines-enhanced network model (BPLeNM)", ISRN Power Engineering, 2014, 23 pages. cited by applicant .
Lee, Sung-Woo, "Mutual Coupling Considerations in the Development of Multi-feed Antenna Systems", http://ntrs.nasa.gov/archive/nasa/casi.ntrs.nasa.gov/19750003064.pdf, 2008, 127 pages. cited by applicant .
Li, Mo et al., "Underground structure monitoring with wireless sensor networks", Proceedings of the 6th international conference on Information processing in sensor networks, ACM, 2007, 69-78. cited by applicant .
Liang, Bin, "Cylindrical Slot FSS Configuration for Beam-Switching Applications", IEEE Transactions on Antennas and Propagation, vol. 63, No. 1, Jan. 2015, 166-173. cited by applicant .
Lier, Erik, "A Dielectric Hybrid Mode Antenna Feed: A Simple Alternative to the Corrugated Horn", IEEE Transactions on Antennas and Propagation, vol. AP-34, No. 1, Jan. 1986, 21-30. cited by applicant .
Luo, Hailu et al., "Reversed propagation dynamics of Laguerre-Gaussian beams in left-handed materials", Physical Review A 77.2, 023812., Feb. 20, 2008, 1-7. cited by applicant .
Makwana, G. D. et al., "Wideband Stacked Rectangular Dielectric Resonator Antenna at 5.2 GHz", International Journal of Electromagnetics and Applications 2012, 2(3), 2012, 41-45. cited by applicant .
Marin, Leandro, "Optimized ECC Implementation for Secure Communication between Heterogeneous IoT Devices", www.mdpi.com/1424-8220/15/9/21478/pdf, 2015, 21478-21499. cited by applicant .
Marrucci, Lorenzo, "Rotating light with light: Generation of helical modes of light by spin-to-orbital angular momentum conversion in inhomogeneous liquid crystals", International Congress on Optics and Optoelectronics. International Society for Optics and Photonics, 2007, 12 pages. cited by applicant .
Marzetta, "Noncooperative Cellular Wireless with Unlimited Numbers of Base Station Antennas", IEEE Transactions on Wireless Communications, vol. 9, No. 11, Nov. 2010, 3590-3600. cited by applicant .
Matikainen, Leena et al., "Remote sensing methods for power line corridor surveys", ISPRS Journal of Photogrammetry and Remote Sensing, 119, 2016, 10-31. cited by applicant .
McKeown, David M. et al., "Rulebased interpretation of aerial imagery", IEEE Transactions on Pattern Analysis and Machine Intelligence 5, 1985, 570-585. cited by applicant .
Mehta,, "Advance Featuring Smart Energy Meter With Bi-Directional Communication", Electronics & Communication MEFGI, Feb. 9, 2014, 169-174. cited by applicant .
Mena, F.P. et al., "Design and Performance of a 600720GHz SidebandSeparating Receiver Using and AIN SIS Junctions", IEEE Transactions on Microwave Theory and Techniques 59.1, 2011, 166-177. cited by applicant .
Miller, Ashley et al., "Pathway to Ubiquitous Broadband: Environments, Policies, and Technologies to Implementation", Oct. 2016, 20 pages. cited by applicant .
Mishra, Sumita et al., "Load Balancing Optimization in LTE/LTEA Cellular Networks: A Review", arXiv preprint arXiv:1412.7273 (2014), 2014, 1-7. cited by applicant .
Mori, A. et al., "The Power Line Transmission Characteristics for an OFDM Signal", Progress in Electromagnetics Research, PIER 61, Musashi Institute of Technology, 2006, 279-290. cited by applicant .
Mueller, G.E. et al., "Polyrod Antennas", Bell System Technical Journal, vol. 26., No. 4, Oct. 29, 1947, 837-851. cited by applicant .
Nakano, Hisamatsu et al., "A Spiral Antenna Backed by a Conducting Plane Reflector", IEEE Transactions on Antennas and Propagation, vol. AP-34 No. 6, Jun. 1986, 791-796. cited by applicant .
Nandi, Somen et al., "Computing for rural empowerment: enabled by last-mile telecommunications", IEEE Communications Magazine 54.6, 2016, 102-109. cited by applicant .
Nassar, "Local Utility Powerline Communications in the 3-500 kHz Band: Channel Impairments, Noise, and Standards", IEEE Signal Processing Magazine, 2012, 1-22. cited by applicant .
Niedermayer, Uwe et al., "Analytic modeling, simulation and interpretation of broadband beam coupling impedance bench measurements", Nuclear Instruments and Methods in Physics Research Section A: Accelerators, Spectrometers, Detectors and Associated Equipment 776, 2015, 129-143. cited by applicant .
Nikitin, Pavel V. et al., "Propagation Model for the HVAC Duct as a Communication Channel", IEEE Transactions on Antennas and Propagation 51.5, 2003, 7 pages. cited by applicant .
NWCLIMATE, "Weather Instruments and Equipment Explained", nwclimate.org, May 7, 2015, 22 pages. cited by applicant .
Ohliger, Michael, "An introduction to coil array design for parallel MRI", http://mriquestions.com/uploads/3/4/5/7/34572113/intro.sub.--to.sub.--coi- l.sub.--design.sub.--parallel.sub.--.pdf, 2006, 16 pages. cited by applicant .
Paruchuri, et al., "Securing Powerline Communication", IEEE, 2008, 64-69. cited by applicant .
Patel, Pinak S. et al., "Sensor Fault Detection in Wireless Sensor Networks and Avoiding the Path Failure Nodes", International Journal of Industrial Electronics and Electrical Engineering, vol. 2, Issue--3, Mar. 2014, 2347-6982. cited by applicant .
Qi, Xue et al., "Ad hoc QoS ondemand routing (AQOR) in mobile ad hoc networks", Journal of parallel and distributed computing 63.2, 2003, 154-165. cited by applicant .
Qiu, Lili et al., "Fault Detection, Isolation, and Diagnosis in Multihop Wireless Networks", Dec. 2003, 16 pages. cited by applicant .
Quan, Xulin, "Analysis and Design of a Compact Dual-Band Directional Antenna", IEEE Antennas and Wireless Propagation Letters, vol. 11, 2012, 547-550. cited by applicant .
Quinstar Technology, Inc.,, "Prime Focus Antenna (QRP series)", quinstar.com, Aug. 19, 2016, 2 pages. cited by applicant .
Ranga, Yogesh et al., "An ultra-wideband quasi-planar antenna with enhanced gain", Progress in Electromagnetics Research C 49, 2014, 59-65. cited by applicant .
Rekimoto, Jun, "SmartSkin: An Infrastructure for Freehand Manipulation on Interactive Surfaces", https://vs.inf.ethz.ch/edu/SS2005/DS/papers/surfaces/rekimoto-smartskin.p- df, 2002, 8 pages. cited by applicant .
Ricardi, L. J., "Some Characteristics of a Communication Satellite Multiple-Beam Antenna", Massachusetts Institute of Technology, Lincoln Laboratory, Technical Note 1975-3, Jan. 28, 1975, 62 pages. cited by applicant .
Rieke, M. et al., "High-Precision Positioning and Real-Time Data Processing of UAV Systems", International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences, vol. XXXVIII-1/C22, 2011, 119-124. cited by applicant .
Robinson, D.A. et al., "Advancing processbased watershed hydrological research using nearsurface geophysics: A vision for, and review of, electrical and magnetic geophysical methods", Hydrological Processes 22.18, Mar. 11, 2008, 3604-3635. cited by applicant .
Robles, Rosslin John et al., "A Review on Security in Smart Home Development", International Journal of Advanced Science and Technology 15, Feb. 2010, 13-22. cited by applicant .
Rousstia, M. W., "Switched-beam antenna array design for millimeter-wave applications", https://pure.tue.nl/ws/files/4418145/599448877400424.pdf, Jan. 1, 2011, 148 pages. cited by applicant .
Sahoo, Srikanta, "Faulty Node Detection in Wireless Sensor Networks Using Cluster", Apr. 2013, 212-223. cited by applicant .
Schoning, Johannes et al., "Multi-Touch Surfaces: A Technical Guide", Johannes Schoning, Institute for Geoinformatics University of Munster, Technical Report TUM-I0833, 2008, 19 pages. cited by applicant .
Sembiring, Krisantus, "Dynamic Resource Allocation for Cloud-based Media Processing", http://www.chinacloud.cn/upload/2013-04/13042109511919.pdf, 2013, 49-54. cited by applicant .
Sharma, Archana et al., "Dielectric Resonator Antenna for X band Microwave Application", Research & Reviews, International Journal of Advanced Research in Electrical, Electronics and Instrumentation Engineering, Oct. 2016, 9 pages. cited by applicant .
Shila, Devu M., "Load-Aware Traffic Engineering for Mesh Networks", Computer Communications 31.7, 2008, 1460-1469. cited by applicant .
Shin, Donghoon et al., "10 Gbps Millimeter-Wave OFDM Experimental System with Iterative Phase Noise Compensation", Tokyo Institute of Technology, IEEE, 2013, 184-186. cited by applicant .
Silvonen, Kimmo, "Calibration and DeEmbedding of Microwave Measurements Using Any Combination of Oneor TwoPort Standards", Publication of the Circuit Theory Laboratory, CT4, 1987, 1-28. cited by applicant .
Simionovici, Ana-Maria et al., "Predictive Modeling in a VoIP System", 2013, 32-40. cited by applicant .
Simons, Rainee N., "Coplanar Waveguide Feeds for Phased Array Antennas", Solid State Technology Branch of NASA Lewis Research Center Fourth Annual Digest, Conference on Advanced Space Exploration Initiative Technologies cosponsored by AIAA, NASA and OAI, 1992, 1-9. cited by applicant .
Singh, Sapana et al., "Key Concepts and Network Architecture for 5G Mobile Technology", International Journal of Scientific Research Engineering & Technology (IJSRET), IIMT Engineering College, Meerut, India, vol. 1, Issue 5, Aug. 2012, 165-170. cited by applicant .
Singh, Seema M. et al., "Broadband Over Power Lines a White Paper", State of New Jersey, Division of the Ratepayer Advocate, NJ, Oct. 2016, 67 pages. cited by applicant .
Song, Kaijun et al., "Broadband radial waveguide power amplifier using a spatial power combining technique", www.mtech.edu/academics/mines/geophysical/xzhou/publications/songfanzhou.- sub.--2009b.sub.--impa.pdf, 2009, 7 pages. cited by applicant .
Sospedra, Joaquim et al., "Badalona Oil PierBased Met-Ocean Monitoring Station", Campbell Scientific, www.campbellsci.com, Nov. 2016, 2 pages. cited by applicant .
Souryal, Michael R. et al., "Rapidly Deployable Mesh Network Testbed", https://pdfs.semanticscholar.org/f914/1ce6999c4095eab3bdea645745761ebe514- 1.pdf, 2009, 6 pages. cited by applicant .
Sowmya, Arcot et al., "Modelling and representation issues in automated feature extraction from aerial and satellite images", ISPRS journal of photogrammetry and remote sensing, 55.1, 2000, 34-47. cited by applicant .
Stancil, Daniel D. et al., "High-speed internet access via HVAC ducts: a new approach", Global Telecommunications Conference, IEEE vol. 6, 2001, 4 pages. cited by applicant .
Sun, Zhi et al., "Magnetic Induction Communications for Wireless Underground Sensor Networks", IEEE Transactions on Antennas and Propagation, vol. 58, No. 7, Jul. 2010, 2426-2435. cited by applicant .
Tesoriero, Ricardo et al., "Tracking autonomous entities using RFID technology", IEEE Transactions on Consumer Electronics 55.2, 2009, 650-655. cited by applicant .
Thota, Saigopal et al., "Computing for Rural Empowerment: Enabled by Last-Mile Telecommunications (Extended Version)", Technical Report, 2013, 14 pages. cited by applicant .
Thottapan, M., "Design and simulation of metal PBG waveguide mode launcher", www.researchgate.net/profile/Dr.sub.--M.sub.--Thottappan/publication/2624- 15753.sub.--Design.sub.--and.sub.--Simulation.sub.--of.sub.--Metal.sub.--P- BG.sub.--Waveguide.sub.--Mode.sub.--Launcher/links/0f317537ad93a5e2a400000- 0.pdf, 2014, 383-387. cited by applicant .
Tillack, M. S. et al., "Configuration and engineering design of the ARIES-RS tokamak power plant", https://www.researchgate.net/publication/222496003.sub.--Configuration.su- b.--and.sub.--engineering.sub.--design.sub.--of.sub.--the.sub.--ARIES-RS.s- ub.--tokamak.sub.--power.sub.--plant, 1997, 87-113. cited by applicant .
UK Essays, "Beam Adaptive Algorithms for Smart Antennas Computer Science Essay", www.ukessays.com, Mar. 23, 2015, 21 pages. cited by applicant .
Van Atta, L.C., "Contributions to the antenna field during World War II", www.nonstopsystems.com/radio/pdf-hell/article-IRE-5-1962.pdf, 1962, 692-697. cited by applicant .
Wade, Paul, "Multiple Reflector Dish Antennas", www.w1ghz.org/antbook/conf/Multiple.sub.--reflector.sub.--antennas.pdf, 2004, 45 pages. cited by applicant .
Wang, Hao et al., "Dielectric Loaded Substrate Integrated Waveguide (SIW)--Plan Horn Antennas", IEEE Transactions on Antennas and Propagation, IEEE Service Center, Piscataway, NJ, US, vol. 56, No. 3, Mar. 1, 2010, 640-647. cited by applicant .
Wang, Xingfu et al., "Zigzag coverage scheme algorithm & analysis for wireless sensor networks", Network Protocols and Algorithms 5.4, 2013, 19-38. cited by applicant .
Washiro, Takanori, "Applications of RFID over power line for Smart Grid", Power Line Communications and Its Applications (ISPLC), 2012 16th IEEE International Symposium on IEEE, 2012, 83-87. cited by applicant .
Wenger, N., "The launching of surface waves on an axial-cylindrical reactive surface", IEEE Transactions on Antennas and Propagation 13.1, 1965, 126-134. cited by applicant .
Wikipedia, "Angular Momentum of Light", https://en.wikipedia.org/wiki/Angular.sub.--momentum.sub.--of.sub.--light-, Nov. 10, 2016, 1-7. cited by applicant .
Wilkes, Gilbert, "Wave Length Lenses", Dec. 5, 1946, 49 pages. cited by applicant .
Won Jung, Chang et al., "Reconfigurable Scan-Beam Single-Arm Spiral Antenna Integrated With RF-MEMS Switches", IEEE Transactions on Antennas and Propagation, vol. 54, No. 2, Feb. 2006, 455-463. cited by applicant .
Woodford, Chris, "How do touchscreens work?", www.explainthatstuff.com/touchscreens.html, Aug. 23, 2016, 8 pages. cited by applicant .
Xiao, Shiyi et al., "Spin-dependent optics with metasurfaces", Nanophotonics 6.1, 215-234., 2016, 215-234. cited by applicant .
Zhang,, "Modified Tapered Slot-line Antennas for Special Applications", REV Journal on Electronics and Communications, vol. 2, Jul.-Dec. 2012, 106-112. cited by applicant .
Zhang, Ming et al., "PlanetSeer: Internet Path Failure Monitoring and Characterization in Wide Area Services", OSDI, vol. 4, 2004, 33 pages. cited by applicant .
Article 34 Amendment/Response to Written Opinion filed Apr. 3, 2017, PCT/US16/28197, pp. 1-10. cited by applicant .
Article 34 Amendment/Response to Written Opinion PCT/US16/28412, filed Apr. 4, 2017, pp. 1-10. cited by applicant .
PCT/US16/30964, International Preliminary Report on Patentability, dated Jun. 28, 2017, 134 pages. cited by applicant .
PCT/US16/36289, International Preliminary Report on Patentability, dated Jun. 29, 2017, 18 pages. cited by applicant .
PCT/US16/40992, International Preliminary Report on Patentability, dated Jun. 29, 2017, 13 pages. cited by applicant .
PCT/US2015/047225 International Preliminary Report on Patentability, dated Mar. 30, 2017, pp. 1-5. cited by applicant .
International Preliminary Report on Patentability for PCT/US2015/049927 dated Apr. 20, 2017. cited by applicant .
Amendment Under Article 34 / Response to Written Opinion for PCT/US16/36290 filed on, May 15, 2017. cited by applicant .
Amendment Under Article 34 / Response to Written Opinion for PCT/US16/36292 filed on, May 15, 2017. cited by applicant .
Amendment Under Article 34 / Response to Written Opinion for PCT/US16/36293 filed on, May 15, 2017. cited by applicant .
PCT/US16/36284 Article 34 Amendment filed, May 19, 2017. cited by applicant .
PCT/US16/36285 Article 34 Amendment filed, May 19, 2017. cited by applicant .
PCT/US16/36288 Article 34 Amendment filed, May 19, 2017. cited by applicant .
International Report on Patentability for PCT/US15/056365 dated Jun. 1, 2017. cited by applicant .
International Preliminary Report on Patentability for PCT/US2015/056626 dated Jun. 15, 2017. cited by applicant .
International Preliminary Report on Patentability for PCT/US2015/056632 dated Jun. 15, 2017. cited by applicant .
International Preliminary Report on Patentability for PCT/US16/36285 dated Jun. 21, 2017. cited by applicant .
PCT/US16/40992 Corrected IPRP dated Jul. 17, 2017. cited by applicant .
PCT/US16/36293 International Preliminary Report on Patentability dated Jul. 3, 2017. cited by applicant .
Article 34 Amendment, PCT/US16/36556, filed May 31, 2017, 1-13. cited by applicant .
International Preliminary Report on Patentability, PCT/US2015/051194, dated May 4, 2017, 1-7. cited by applicant .
International Preliminary Report on Patentability, PCT/US2015/056368, dated Jun. 1, 2017, 1-8. cited by applicant .
International Preliminary Report on Patentability, PCT/US2015/056320, dated Jun. 1, 2017, 1-9. cited by applicant .
PCT/US16/28197 International Preliminary Report on Patentability, dated Jul. 3, 2017, pp. 1-113. cited by applicant .
International Preliminary Report on Patentability PCT/US16/28412, dated May 19, 2017, pp. 1-21. cited by applicant .
International Preliminary Report on Patentability PCT/US16/26860, dated May 19, 2017, pp. 1-95. cited by applicant .
PCT/US16/35384 Int'l Preliminary Report on Patentability, dated Jun. 9, 2017, pp. 1-106. cited by applicant .
"Amendment Under Article 34--Response to Written Opinion Filed May 15, 2017", Application No. PCT/US16/36303 filed Jun. 8, 2016, 1-10. cited by applicant .
"Article 34 Amendment Filed May 19, 2017", PCT Application No. PCT/US16/36286 filed Jun. 8, 2016, 1-8. cited by applicant .
"Article 34 Amendment Filed", PCT Application No. PCT/US16/36553 Filed Jun. 9, 2016, 1-11. cited by applicant .
"Amendment Under Article 34 and Response to Written Opinion Filed May 15, 2017", Application No. PCT/US16/41561 filed Jul. 8, 2016, 1-14. cited by applicant .
"Amendment Under Article 34 Response to Written Opinion Filed May 15, 2017", PCT Application PCT/US16/36254 filed Jun. 8, 2016, 1-11. cited by applicant .
"Amendment Under Article 34 / Response to Written Opinion", PCT/US16/28207, Filed Apr. 3, 2017, pp. 1-12. cited by applicant .
"Amendment Under Article 34 / Response to Written Opinion", PCT/US16/36295, filed May 4, 2017. cited by applicant .
"Amendment Under Article 34 / Response to Written Opinion", PCT/US16/36297, filed May 31, 2017, 12 pages. cited by applicant .
"Amendment Under Article 34 / Response to Written Opinion", PCT Application No. PCT/US16/27403, dated Mar. 24, 2017, 11 pages. cited by applicant .
"Amendment Under Article 34, Response to Written Opinion", PCT/US16/36289, Filed May 11, 2017,, 8 pages. cited by applicant .
"Article 34 Amendment", PCT/US16/36798, dated May 15, 2017. cited by applicant .
"Article 34 Amendment", PCT/US16/33182, dated Apr. 4, 2017, 1-12. cited by applicant .
"Article 34 Amendment", PCT Application No. PCT/US16/30964, dated Apr. 25, 2017, 13 pages. cited by applicant .
"Article 34 Amendment", PCT/US16/36551, dated May 23, 2017, 14 pages. cited by applicant .
"Article 34 Amendment", PCT/US16/35383, dated Apr. 14, 2017, 15 pages. cited by applicant .
"Article 34 Amendment", PCT/US16/36388, dated May 31, 2017, 9 pages. cited by applicant .
"Article 34 Amendment and Demand filed Jul. 14, 2017", PCT Application No. PCT/US16/46315 filed Aug. 10, 2016, 1-15. cited by applicant .
"Article 34 Amendment and Response to Written Opinion filed Jul. 14, 2017", PCT Application No. PCT/US16/46323 filed Aug. 10, 2016, 1-21. cited by applicant .
"Article 34 Amendment Filed Apr. 18, 2017 in PCT Application No. PCT/US16/57161". cited by applicant .
"Article 34 Amendment filed Apr. 3, 2017", PCT Application No. PCT/US16/28206, dated Apr. 3, 2017, 9 pages. cited by applicant .
"Article 34 Amendment Filed Jul. 11, 2017", PCT Application No. PCT/US16/51429 filed Sep. 13, 2016, 1-37. cited by applicant .
"Article 34 Amendment for", PCT/US16/40992 filed on, May 5, 2017. cited by applicant .
"International Preliminary Report on Patentability", PCT/US15/51583, dated May 4, 2017. cited by applicant .
"International Preliminary Report on Patentability", PCT/US2015/049932, dated Apr. 27, 2017. cited by applicant .
"International Preliminary Report on Patentability", PCT/US15/056598, dated Jun. 1, 2017. cited by applicant .
"International Preliminary Report on Patentability", PCT/US15/48458, dated Apr. 13, 2017. cited by applicant .
"International Preliminary Report on Patentability", PCT/US16/27398 dated May 1, 2017. cited by applicant .
"International Preliminary Report on Patentability", PCT/US16/28207, dated May 16, 2017. cited by applicant .
"International Preliminary Report on Patentability", PCT/US16/27403, dated May 19, 2017. cited by applicant .
"International Preliminary Report on Patentability", PCT/US2015/051146, dated May 4, 2017. cited by applicant .
"International Preliminary Report on Patentability", PCT/US2015/051163, dated May 4, 2017. cited by applicant .
"International Preliminary Report on Patentability", PCT/US16/36798, dated Jun. 9, 2017, 20 pages. cited by applicant .
"International Preliminary Report on Patentability", PCT/US16/36551, dated Jun. 30, 2017, 30 pages. cited by applicant .
"International Preliminary Report on Patentability", PCT/US16/35383, dated Jun. 15, 2017, 32 pages. cited by applicant .
"International Preliminary Report on Patentability", PCT/US15/56316, dated Jun. 1, 2017, 8 pages. cited by applicant .
"International Preliminary Report on Patentability", PCT/US15/51213, dated May 4, 2017, 9. cited by applicant .
"International Preliminary Report on Patentability", PCT/US2015/048454, dated Apr. 13, 7, pp. 1-9. cited by applicant .
"International Preliminary Report on Patentability & Written Opinion", PCT/US16/32430, dated May 25, 2017, 122 pages. cited by applicant .
"International Preliminary Report on Patentability & Written Opinion", PCT/US16/28206, dated May 16, 2017, 23 pages. cited by applicant .
"International Preliminary Report on Patentability & Written Opinion", PCT/US2015/051578, dated May 4, 2017, 6 pages. cited by applicant .
"International Preliminary Report on Patentability & Written Opinion", PCT/US2015/047315, dated Mar. 30, 2017, 8 pages. cited by applicant .
"International Preliminary Report on Patentability & Written Opinion", PCT/US2015/051193, dated May 4, 2017, 8 pages. cited by applicant .
"International Preliminary Report on Patentability dated May 23, 2017", PCT Application No. PCT/US2015/056615 filed Oct. 21, 2015, dated May 23, 2017, 1-7. cited by applicant .
"PCT Article 34 Amendment filed Apr. 12, 2017", PCT Application PCT/US16/32289 filed May 13, 2016, 1-11. cited by applicant .
"Response to Written Opinion and Article 34 Amendment", PCT/US2016/035384, filed Apr. 12, 2017, 10 pages. cited by applicant .
Patent Cooperation Treaty, "International Preliminary Report on Patentability dated Jun. 15, 2017", PCT Application No. PCT/US16/36254 filed Jun. 7, 2016, 1-21. cited by applicant .
Patent Cooperation Treaty, "International Preliminary Report on Patentability dated Jun. 16, 2017", PCT Application No. PCT/US16/36553 filed Jun. 16, 2016, 25 pages. cited by applicant .
Patent Cooperation Treaty, "International Preliminary Report on Patentability dated Jun. 26, 2017", PCT Application No. PCT/US16/36303 filed Jun. 8, 2016, 1-21. cited by applicant .
Patent Cooperation Treaty, "International Preliminary Report on Patentability dated Jun. 26, 2017", PCT Application No. PCT/US16/36295 filed Jun. 8, 2016, 1-10. cited by applicant .
Patent Cooperation Treaty, "International Preliminary Report on Patentability dated Apr. 25, 2017", Application No. PCT/US2015/051183, dated Apr. 25, 2017, 1-8. cited by applicant .
Patent Cooperation Treaty, "International Preliminary Report on Patentability dated Jun. 15, 2017", PCT Application No. PCT/US16/33182 filed May 19, 2016, dated Jun. 15, 2017, 52 pages. cited by applicant .
Patent Cooperation Treaty (PCT), "International Preliminary Report on Patentability", Application No. PCT/US2015/049928, dated Apr. 27, 2017, 1-9. cited by applicant .
Yeh, W.H. C. "Electromagnetic Surface-Wave Propagation Along a Dielectric Cylinder of Elliptical Cross Section", Thesis, California Institute of Technology, Pasadena, CA, 1962, 182 pgs. cited by applicant.

Главный эксперт: Jones; Stephen E
Assistant Examiner: Outten; Scott S
Уполномоченный, доверенный или фирма: Guntin; Ed Stuckman; Bruce E.


ФОРМУЛА ИЗОБРЕТЕНИЯ



What is claimed is:

1. A connector comprising: a first port coupleable to a first dielectric core of a first conductor-less transmission medium to receive electromagnetic waves from the first conductor-less transmission medium at non-optical frequencies; and a waveguide, without an inner conductor and without a metallic shield, the waveguide having a one-piece dielectric core having a bulbous central portion that mitigates radiation as the electromagnetic waves are guided about an angle of connection, wherein the one-piece dielectric core has a pair of arms connected to the bulbous central portion in accordance with the angle of connection, wherein the pair of arms of the one-piece dielectric core is configured to interface the first dielectric core to the waveguide at the first port and configured to guide the electromagnetic waves from the first port to a second port via the bulbous central portion in accordance with the angle of connection; wherein the second port is coupleable to a second dielectric core of a second conductor-less transmission medium to transmit the electromagnetic waves to the second conductor-less transmission medium and wherein the waveguide is further configured to interface the second dielectric core to the waveguide at the second port.

2. The connector of claim 1, wherein the one-piece dielectric core is surrounded, at least in part, by a dielectric cladding having a first dielectric constant that is less than a second dielectric constant of the one-piece dielectric core.

3. The connector of claim 2, wherein the dielectric cladding comprises a dielectric foam.

4. The connector of claim 2, wherein the dielectric cladding is surrounded, at least in part, by an insulating jacket.

5. The connector of claim 1, wherein the one-piece dielectric core comprises a high density polyethylene material.

6. The connector of claim 1, wherein the first port is configured non-colinearly with the second port in accordance with the angle of connection.

7. The connector of claim 1, wherein the first conductor-less transmission medium has a varying pitch helical jacket that supports the first dielectric core.

8. A connector comprising: a first port configured to receive electromagnetic waves at non-optical frequencies guided by a first dielectric core of a first conductor-less coaxial cable; and a waveguide without an inner conductor and without a metallic shield, the waveguide having a one-piece dielectric core having a bulbous central portion that mitigates radiation as the electromagnetic waves are guided about an angle of connection, wherein the one-piece dielectric core has a pair of arms connected to the bulbous central portion in accordance with the angle of connection, wherein the pair of arms of the one-piece dielectric core is configured to interface the first dielectric core to the waveguide at the first port and configured to guide the electromagnetic waves from the first port to a second port via the bulbous central portion; wherein the second port is configured to transmit the electromagnetic waves to a second dielectric core of a second conductor-less coaxial cable and wherein the waveguide is further configured to interface the second dielectric core to the waveguide at the second port.

9. The connector of claim 8, wherein the one-piece dielectric core is surrounded, at least in part, by a dielectric cladding having a first dielectric constant that is less than a second dielectric constant of the one-piece dielectric core.

10. The connector of claim 9, wherein the dielectric cladding comprises a dielectric foam.

11. The connector of claim 9, wherein the dielectric cladding is surrounded, at least in part, by an insulating jacket.

12. The connector of claim 8, wherein the first port is configured non-colinearly with the second port in accordance with the angle of connection.

13. The connector of claim 8, wherein the one-piece dielectric core comprises a high density polyethylene material.

14. The connector of claim 8, wherein the first conductor-less coaxial cable has a varying pitch helical jacket that supports the first dielectric core.

15. A method comprising: receiving, at a first port of a connector, guided electromagnetic waves at non-optical frequencies from a first dielectric core of a first conductor-less coaxial cable; transferring, via a waveguide of the connector, the guided electromagnetic waves to a second port of the connector as transferred guided electromagnetic waves, wherein the waveguide is without an inner conductor and without a metallic shield, the waveguide having a one-piece dielectric core having a bulbous central portion that mitigates radiation as the guided electromagnetic waves are guided about an angle of connection, wherein the one-piece dielectric core has a pair of arms connected to the bulbous central portion in accordance with the angle of connection, wherein the pair of arms of the one-piece dielectric core is configured to interface the first dielectric core to the waveguide at the first port, and wherein the waveguide is further configured to interface a second dielectric core to the waveguide at the second port via the bulbous central portion; and launching, via the second port of the connector, the transferred guided electromagnetic waves on the second dielectric core of a second conductor-less coaxial cable.

16. The method of claim 15, wherein the one-piece dielectric core is surrounded, at least in part, by a dielectric cladding having a first dielectric constant that is less than a second dielectric constant of the one-piece dielectric core.

17. The method of claim 16, wherein the dielectric cladding comprises a dielectric foam.

18. The method of claim 16, wherein the dielectric cladding is surrounded, at least in part, by an insulating jacket.

19. The method of claim 15, wherein the first port is configured non-colinearly with the second port in accordance with the angle of connection.

20. The method of claim 15, wherein the one-piece dielectric core comprises a high density polyethylene material.


ОПИСАНИЕ



FIELD OF THE DISCLOSURE

The subject disclosure relates to components in a communication network.


УРОВЕНЬ ТЕХНИКИ



As smart phones and other portable devices increasingly become ubiquitous, and data usage increases, macrocell base station devices and existing wireless infrastructure in turn require higher bandwidth capability in order to address the increased demand. To provide additional mobile bandwidth, small cell deployment is being pursued, with microcells and picocells providing coverage for much smaller areas than traditional macrocells.

In addition, most homes and businesses have grown to rely on broadband data access for services such as voice, video and Internet browsing, etc. Broadband access networks include satellite, 4G or 5G wireless, power line communication, fiber, cable, and telephone networks.


КРАТКОЕ ОПИСАНИЕ РИСУНКОВ



Reference will now be made to the accompanying drawings, which are not necessarily drawn to scale, and wherein:

FIG. 1 is a block diagram illustrating an example, non-limiting embodiment of a guided-wave communications system in accordance with various aspects described herein.

FIG. 2 is a block diagram illustrating an example, non-limiting embodiment of a transmission device in accordance with various aspects described herein.

FIG. 3 is a graphical diagram illustrating an example, non-limiting embodiment of an electromagnetic field distribution in accordance with various aspects described herein.

FIG. 4 is a graphical diagram illustrating an example, non-limiting embodiment of an electromagnetic field distribution in accordance with various aspects described herein.

FIG. 5A is a graphical diagram illustrating an example, non-limiting embodiment of a frequency response in accordance with various aspects described herein.

FIG. 5B is a graphical diagram illustrating example, non-limiting embodiments of a longitudinal cross-section of an insulated wire depicting fields of guided electromagnetic waves at various operating frequencies in accordance with various aspects described herein.

FIG. 6 is a graphical diagram illustrating an example, non-limiting embodiment of an electromagnetic field distribution in accordance with various aspects described herein.

FIG. 7 is a block diagram illustrating an example, non-limiting embodiment of an arc coupler in accordance with various aspects described herein.

FIG. 8 is a block diagram illustrating an example, non-limiting embodiment of an arc coupler in accordance with various aspects described herein.

FIG. 9A is a block diagram illustrating an example, non-limiting embodiment of a stub coupler in accordance with various aspects described herein.

FIG. 9B is a diagram illustrating an example, non-limiting embodiment of an electromagnetic distribution in accordance with various aspects described herein.

FIGS. 10A and 10B are block diagrams illustrating example, non-limiting embodiments of couplers and transceivers in accordance with various aspects described herein.

FIG. 11 is a block diagram illustrating an example, non-limiting embodiment of a dual stub coupler in accordance with various aspects described herein.

FIG. 12 is a block diagram illustrating an example, non-limiting embodiment of a repeater system in accordance with various aspects described herein.

FIG. 13 illustrates a block diagram illustrating an example, non-limiting embodiment of a bidirectional repeater in accordance with various aspects described herein.

FIG. 14 is a block diagram illustrating an example, non-limiting embodiment of a waveguide system in accordance with various aspects described herein.

FIG. 15 is a block diagram illustrating an example, non-limiting embodiment of a guided-wave communications system in accordance with various aspects described herein.

FIGS. 16A & 16B are block diagrams illustrating an example, non-limiting embodiment of a system for managing a power grid communication system in accordance with various aspects described herein.

FIG. 17A illustrates a flow diagram of an example, non-limiting embodiment of a method for detecting and mitigating disturbances occurring in a communication network of the system of FIGS. 16A and 16B.

FIG. 17B illustrates a flow diagram of an example, non-limiting embodiment of a method for detecting and mitigating disturbances occurring in a communication network of the system of FIGS. 16A and 16B.

FIGS. 18A, 18B, and 18C are block diagrams illustrating example, non-limiting embodiment of a transmission medium for propagating guided electromagnetic waves.

FIG. 18D is a block diagram illustrating an example, non-limiting embodiment of bundled transmission media in accordance with various aspects described herein.

FIG. 18E is a block diagram illustrating an example, non-limiting embodiment of a plot depicting cross-talk between first and second transmission mediums of the bundled transmission media of FIG. 18D in accordance with various aspects described herein.

FIG. 18F is a block diagram illustrating an example, non-limiting embodiment of bundled transmission media to mitigate cross-talk in accordance with various aspects described herein.

FIGS. 18G and 18H are block diagrams illustrating example, non-limiting embodiments of connector configurations that can be used with the transmission medium of FIG. 18A, 18B, or 18C.

FIG. 18I is a block diagram illustrating example, non-limiting embodiments of transmission mediums for propagating guided electromagnetic waves.

FIG. 18J is a block diagram illustrating example, non-limiting embodiments of bundled transmission media to mitigate cross-talk in accordance with various aspects described herein.

FIG. 18K is a block diagram illustrating an example, non-limiting embodiment of exposed stubs from the bundled transmission media for use as antennas in accordance with various aspects described herein.

FIGS. 19A and 19B are block diagrams illustrating example, non-limiting embodiments of the transmission medium of FIG. 18A used for inducing guided electromagnetic waves on power lines supported by utility poles.

FIG. 20A is a block diagram illustrating an example, non-limiting embodiment of a connector in accordance with various aspects described herein.

FIG. 20B is a block diagram illustrating an example, non-limiting embodiment of a connector in accordance with various aspects described herein.

FIG. 20C is a block diagram illustrating an example, non-limiting embodiment of a connector in accordance with various aspects described herein.

FIG. 20D is a block diagram illustrating an example, non-limiting embodiment of a transmission medium for propagating guided electromagnetic waves.

FIG. 20E is a block diagram illustrating an example, non-limiting embodiment of a transmission medium for propagating guided electromagnetic waves.

FIG. 20F illustrates a flow diagram of an example, non-limiting embodiment of a method.

FIG. 20G illustrates a flow diagram of an example, non-limiting embodiment of a method.

FIG. 21 is a block diagram of an example, non-limiting embodiment of a computing environment in accordance with various aspects described herein.

FIG. 22 is a block diagram of an example, non-limiting embodiment of a mobile network platform in accordance with various aspects described herein.

FIG. 23 is a block diagram of an example, non-limiting embodiment of a communication device in accordance with various aspects described herein.


ПОДРОБНОЕ ОПИСАНИЕ



One or more embodiments are now described with reference to the drawings, wherein like reference numerals are used to refer to like elements throughout. In the following description, for purposes of explanation, numerous details are set forth in order to provide a thorough understanding of the various embodiments. It is evident, however, that the various embodiments can be practiced without these details (and without applying to any particular networked environment or standard).

In an embodiment, a guided wave communication system is presented for sending and receiving communication signals such as data or other signaling via guided electromagnetic waves. The guided electromagnetic waves include, for example, surface waves or other electromagnetic waves that are bound to or guided by a transmission medium. It will be appreciated that a variety of transmission media can be utilized with guided wave communications without departing from example embodiments. Examples of such transmission media can include one or more of the following, either alone or in one or more combinations: wires, whether insulated or not, and whether single-stranded or multi-stranded; conductors of other shapes or configurations including wire bundles, cables, rods, rails, pipes; non-conductors such as dielectric pipes, rods, rails, or other dielectric members; combinations of conductors and dielectric materials; or other guided wave transmission media.

The inducement of guided electromagnetic waves on a transmission medium can be independent of any electrical potential, charge or current that is injected or otherwise transmitted through the transmission medium as part of an electrical circuit. For example, in the case where the transmission medium is a wire, it is to be appreciated that while a small current in the wire may be formed in response to the propagation of the guided waves along the wire, this can be due to the propagation of the electromagnetic wave along the wire surface, and is not formed in response to electrical potential, charge or current that is injected into the wire as part of an electrical circuit. The electromagnetic waves traveling on the wire therefore do not require a circuit to propagate along the wire surface. The wire therefore is a single wire transmission line that is not part of a circuit. Also, in some embodiments, a wire is not necessary, and the electromagnetic waves can propagate along a single line transmission medium that is not a wire.

More generally, "guided electromagnetic waves" or "guided waves" as described by the subject disclosure are affected by the presence of a physical object that is at least a part of the transmission medium (e.g., a bare wire or other conductor, a dielectric, an insulated wire, a conduit or other hollow element, a bundle of insulated wires that is coated, covered or surrounded by a dielectric or insulator or other wire bundle, or another form of solid, liquid or otherwise non-gaseous transmission medium) so as to be at least partially bound to or guided by the physical object and so as to propagate along a transmission path of the physical object. Such a physical object can operate as at least a part of a transmission medium that guides, by way of an interface of the transmission medium (e.g., an outer surface, inner surface, an interior portion between the outer and the inner surfaces or other boundary between elements of the transmission medium), the propagation of guided electromagnetic waves, which in turn can carry energy, data and/or other signals along the transmission path from a sending device to a receiving device.

Unlike free space propagation of wireless signals such as unguided (or unbounded) electromagnetic waves that decrease in intensity inversely by the square of the distance traveled by the unguided electromagnetic waves, guided electromagnetic waves can propagate along a transmission medium with less loss in magnitude per unit distance than experienced by unguided electromagnetic waves.

Unlike electrical signals, guided electromagnetic waves can propagate from a sending device to a receiving device without requiring a separate electrical return path between the sending device and the receiving device. As a consequence, guided electromagnetic waves can propagate from a sending device to a receiving device along a transmission medium having no conductive components (e.g., a dielectric strip), or via a transmission medium having no more than a single conductor (e.g., a single bare wire or insulated wire). Even if a transmission medium includes one or more conductive components and the guided electromagnetic waves propagating along the transmission medium generate currents that flow in the one or more conductive components in a direction of the guided electromagnetic waves, such guided electromagnetic waves can propagate along the transmission medium from a sending device to a receiving device without requiring a flow of opposing currents on an electrical return path between the sending device and the receiving device.

In a non-limiting illustration, consider electrical systems that transmit and receive electrical signals between sending and receiving devices by way of conductive media. Such systems generally rely on electrically separate forward and return paths. For instance, consider a coaxial cable having a center conductor and a ground shield that are separated by an insulator. Typically, in an electrical system a first terminal of a sending (or receiving) device can be connected to the center conductor, and a second terminal of the sending (or receiving) device can be connected to the ground shield. If the sending device injects an electrical signal in the center conductor via the first terminal, the electrical signal will propagate along the center conductor causing forward currents in the center conductor, and return currents in the ground shield. The same conditions apply for a two terminal receiving device.

In contrast, consider a guided wave communication system such as described in the subject disclosure, which can utilize different embodiments of a transmission medium (including among others a coaxial cable) for transmitting and receiving guided electromagnetic waves without an electrical return path. In one embodiment, for example, the guided wave communication system of the subject disclosure can be configured to induce guided electromagnetic waves that propagate along an outer surface of a coaxial cable. Although the guided electromagnetic waves will cause forward currents on the ground shield, the guided electromagnetic waves do not require return currents to enable the guided electromagnetic waves to propagate along the outer surface of the coaxial cable. The same can be said of other transmission media used by a guided wave communication system for the transmission and reception of guided electromagnetic waves. For example, guided electromagnetic waves induced by the guided wave communication system on an outer surface of a bare wire, or an insulated wire can propagate along the bare wire or the insulated bare wire without an electrical return path.

Consequently, electrical systems that require two or more conductors for carrying forward and reverse currents on separate conductors to enable the propagation of electrical signals injected by a sending device are distinct from guided wave systems that induce guided electromagnetic waves on an interface of a transmission medium without the need of an electrical return path to enable the propagation of the guided electromagnetic waves along the interface of the transmission medium.

It is further noted that guided electromagnetic waves as described in the subject disclosure can have an electromagnetic field structure that lies primarily or substantially outside of a transmission medium so as to be bound to or guided by the transmission medium and so as to propagate non-trivial distances on or along an outer surface of the transmission medium. In other embodiments, guided electromagnetic waves can have an electromagnetic field structure that lies primarily or substantially inside a transmission medium so as to be bound to or guided by the transmission medium and so as to propagate non-trivial distances within the transmission medium. In other embodiments, guided electromagnetic waves can have an electromagnetic field structure that lies partially inside and partially outside a transmission medium so as to be bound to or guided by the transmission medium and so as to propagate non-trivial distances along the transmission medium. The desired electronic field structure in an embodiment may vary based upon a variety of factors, including the desired transmission distance, the characteristics of the transmission medium itself, and environmental conditions/characteristics outside of the transmission medium (e.g., presence of rain, fog, atmospheric conditions, etc.).

Various embodiments described herein relate to coupling devices, that can be referred to as "waveguide coupling devices", "waveguide couplers" or more simply as "couplers", "coupling devices" or "launchers" for launching and/or extracting guided electromagnetic waves to and from a transmission medium at millimeter-wave frequencies (e.g., 30 to 300 GHz), wherein the wavelength can be small compared to one or more dimensions of the coupling device and/or the transmission medium such as the circumference of a wire or other cross sectional dimension, or lower microwave frequencies such as 300 MHz to 30 GHz. Transmissions can be generated to propagate as waves guided by a coupling device, such as: a strip, arc or other length of dielectric material; a horn, monopole, rod, slot or other antenna; an array of antennas; a magnetic resonant cavity, or other resonant coupler; a coil, a strip line, a waveguide or other coupling device. In operation, the coupling device receives an electromagnetic wave from a transmitter or transmission medium. The electromagnetic field structure of the electromagnetic wave can be carried inside the coupling device, outside the coupling device or some combination thereof. When the coupling device is in close proximity to a transmission medium, at least a portion of an electromagnetic wave couples to or is bound to the transmission medium, and continues to propagate as guided electromagnetic waves. In a reciprocal fashion, a coupling device can extract guided waves from a transmission medium and transfer these electromagnetic waves to a receiver.

According to an example embodiment, a surface wave is a type of guided wave that is guided by a surface of a transmission medium, such as an exterior or outer surface of the wire, or another surface of the wire that is adjacent to or exposed to another type of medium having different properties (e.g., dielectric properties). Indeed, in an example embodiment, a surface of the wire that guides a surface wave can represent a transitional surface between two different types of media. For example, in the case of a bare or uninsulated wire, the surface of the wire can be the outer or exterior conductive surface of the bare or uninsulated wire that is exposed to air or free space. As another example, in the case of insulated wire, the surface of the wire can be the conductive portion of the wire that meets the insulator portion of the wire, or can otherwise be the insulator surface of the wire that is exposed to air or free space, or can otherwise be any material region between the insulator surface of the wire and the conductive portion of the wire that meets the insulator portion of the wire, depending upon the relative differences in the properties (e.g., dielectric properties) of the insulator, air, and/or the conductor and further dependent on the frequency and propagation mode or modes of the guided wave.

According to an example embodiment, the term "about" a wire or other transmission medium used in conjunction with a guided wave can include fundamental guided wave propagation modes such as a guided waves having a circular or substantially circular field distribution, a symmetrical electromagnetic field distribution (e.g., electric field, magnetic field, electromagnetic field, etc.) or other fundamental mode pattern at least partially around a wire or other transmission medium. In addition, when a guided wave propagates "about" a wire or other transmission medium, it can do so according to a guided wave propagation mode that includes not only the fundamental wave propagation modes (e.g., zero order modes), but additionally or alternatively non-fundamental wave propagation modes such as higher-order guided wave modes (e.g., 1.sup.st order modes, 2.sup.nd order modes, etc.), asymmetrical modes and/or other guided (e.g., surface) waves that have non-circular field distributions around a wire or other transmission medium. As used herein, the term "guided wave mode" refers to a guided wave propagation mode of a transmission medium, coupling device or other system component of a guided wave communication system.

For example, such non-circular field distributions can be unilateral or multi-lateral with one or more axial lobes characterized by relatively higher field strength and/or one or more nulls or null regions characterized by relatively low-field strength, zero-field strength or substantially zero-field strength. Further, the field distribution can otherwise vary as a function of azimuthal orientation around the wire such that one or more angular regions around the wire have an electric or magnetic field strength (or combination thereof) that is higher than one or more other angular regions of azimuthal orientation, according to an example embodiment. It will be appreciated that the relative orientations or positions of the guided wave higher order modes or asymmetrical modes can vary as the guided wave travels along the wire.

As used herein, the term "millimeter-wave" can refer to electromagnetic waves/signals that fall within the "millimeter-wave frequency band" of 30 GHz to 300 GHz. The term "microwave" can refer to electromagnetic waves/signals that fall within a "microwave frequency band" of 300 MHz to 300 GHz. The term "radio frequency" or "RF" can refer to electromagnetic waves/signals that fall within the "radio frequency band" of 10 kHz to 1 THz. It is appreciated that wireless signals, electrical signals, and guided electromagnetic waves as described in the subject disclosure can be configured to operate at any desirable frequency range, such as, for example, at frequencies within, above or below millimeter-wave and/or microwave frequency bands. In particular, when a coupling device or transmission medium includes a conductive element, the frequency of the guided electromagnetic waves that are carried by the coupling device and/or propagate along the transmission medium can be below the mean collision frequency of the electrons in the conductive element. Further, the frequency of the guided electromagnetic waves that are carried by the coupling device and/or propagate along the transmission medium can be a non-optical frequency, e.g. a radio frequency below the range of optical frequencies that begins at 1 THz.

As used herein, the term "antenna" can refer to a device that is part of a transmitting or receiving system to transmit/radiate or receive wireless signals.

In accordance with one or more embodiments, a connector includes a first port configured to receive electromagnetic waves guided by a first dielectric core of a first transmission medium. A waveguide is configured to guide the electromagnetic waves from the first port to a second port. The second port is configured to transmit the electromagnetic waves to a second dielectric core of a second transmission medium.

In accordance with one or more embodiments, a connector includes a first port coupleable to a first dielectric core of a first conductor-less transmission medium to receive electromagnetic waves from the first transmission medium. A waveguide is configured to guide the electromagnetic waves from the first port to a second port in accordance with an angle of connection. The second port is coupleable to a second dielectric core of a second conductor-less transmission medium to transmit the electromagnetic waves to the second transmission medium.

In accordance with one or more embodiments, a method includes receiving, at a first port of a connector, guided electromagnetic waves from a first dielectric core of a first conductor-less transmission medium; transferring, via a waveguide of the connector, the guided electromagnetic waves to a second port of the connector; and launching, via the second port of the connector, the guided electromagnetic waves on a second dielectric core of a second conductor-less transmission medium.

In accordance with one or more embodiments, a transmission medium, includes a dielectric core comprising a plurality of rigid dielectric members configured to propagate guided electromagnetic waves. A dielectric cladding is disposed on at least a portion of an outer surface of the first dielectric core.

In accordance with one or more embodiments, a coaxial cable, includes a dielectric core comprising a plurality of rigid dielectric rods configured to propagate guided electromagnetic waves without a conductor. A dielectric cladding surrounds at least a portion of the dielectric core.

In accordance with one or more embodiments, a method includes receiving an electromagnetic wave; and guiding the electromagnetic wave via a conductor-less transmission medium having a dielectric core comprising a plurality of rigid dielectric members configured to propagate the guided electromagnetic waves and a dielectric cladding that flexibly supports the dielectric core.

Referring now to FIG. 1, a block diagram 100 illustrating an example, non-limiting embodiment of a guided wave communications system is shown. In operation, a transmission device 101 receives one or more communication signals 110 from a communication network or other communications device that includes data and generates guided waves 120 to convey the data via the transmission medium 125 to the transmission device 102. The transmission device 102 receives the guided waves 120 and converts them to communication signals 112 that include the data for transmission to a communications network or other communications device. The guided waves 120 can be modulated to convey data via a modulation technique such as phase shift keying, frequency shift keying, quadrature amplitude modulation, amplitude modulation, multi-carrier modulation such as orthogonal frequency division multiplexing and via multiple access techniques such as frequency division multiplexing, time division multiplexing, code division multiplexing, multiplexing via differing wave propagation modes and via other modulation and access strategies.

The communication network or networks can include a wireless communication network such as a mobile data network, a cellular voice and data network, a wireless local area network (e.g., WiFi or an 802.xx network), a satellite communications network, a personal area network or other wireless network. The communication network or networks can also include a wired communication network such as a telephone network, an Ethernet network, a local area network, a wide area network such as the Internet, a broadband access network, a cable network, a fiber optic network, or other wired network. The communication devices can include a network edge device, bridge device or home gateway, a set-top box, broadband modem, telephone adapter, access point, base station, or other fixed communication device, a mobile communication device such as an automotive gateway or automobile, laptop computer, tablet, smartphone, cellular telephone, or other communication device.

In an example embodiment, the guided wave communication system 100 can operate in a bi-directional fashion where transmission device 102 receives one or more communication signals 112 from a communication network or device that includes other data and generates guided waves 122 to convey the other data via the transmission medium 125 to the transmission device 101. In this mode of operation, the transmission device 101 receives the guided waves 122 and converts them to communication signals 110 that include the other data for transmission to a communications network or device. The guided waves 122 can be modulated to convey data via a modulation technique such as phase shift keying, frequency shift keying, quadrature amplitude modulation, amplitude modulation, multi-carrier modulation such as orthogonal frequency division multiplexing and via multiple access techniques such as frequency division multiplexing, time division multiplexing, code division multiplexing, multiplexing via differing wave propagation modes and via other modulation and access strategies.

The transmission medium 125 can include a cable having at least one inner portion surrounded by a dielectric material such as an insulator or other dielectric cover, coating or other dielectric material, the dielectric material having an outer surface and a corresponding circumference. In an example embodiment, the transmission medium 125 operates as a single-wire transmission line to guide the transmission of an electromagnetic wave. When the transmission medium 125 is implemented as a single wire transmission system, it can include a wire. The wire can be insulated or uninsulated, and single-stranded or multi-stranded (e.g., braided). In other embodiments, the transmission medium 125 can contain conductors of other shapes or configurations including wire bundles, cables, rods, rails, pipes. In addition, the transmission medium 125 can include non-conductors such as dielectric pipes, rods, rails, or other dielectric members; combinations of conductors and dielectric materials, conductors without dielectric materials or other guided wave transmission media. It should be noted that the transmission medium 125 can otherwise include any of the transmission media previously discussed.

Further, as previously discussed, the guided waves 120 and 122 can be contrasted with radio transmissions over free space/air or conventional propagation of electrical power or signals through the conductor of a wire via an electrical circuit. In addition to the propagation of guided waves 120 and 122, the transmission medium 125 may optionally contain one or more wires that propagate electrical power or other communication signals in a conventional manner as a part of one or more electrical circuits.

Referring now to FIG. 2, a block diagram 200 illustrating an example, non-limiting embodiment of a transmission device is shown. The transmission device 101 or 102 includes a communications interface (I/F) 205, a transceiver 210 and a coupler 220.

In an example of operation, the communications interface 205 receives a communication signal 110 or 112 that includes data. In various embodiments, the communications interface 205 can include a wireless interface for receiving a wireless communication signal in accordance with a wireless standard protocol such as LTE or other cellular voice and data protocol, WiFi or an 802.11 protocol, WIMAX protocol, Ultra Wideband protocol, Bluetooth protocol, Zigbee protocol, a direct broadcast satellite (DBS) or other satellite communication protocol or other wireless protocol. In addition or in the alternative, the communications interface 205 includes a wired interface that operates in accordance with an Ethernet protocol, universal serial bus (USB) protocol, a data over cable service interface specification (DOCSIS) protocol, a digital subscriber line (DSL) protocol, a Firewire (IEEE 1394) protocol, or other wired protocol. In additional to standards-based protocols, the communications interface 205 can operate in conjunction with other wired or wireless protocol. In addition, the communications interface 205 can optionally operate in conjunction with a protocol stack that includes multiple protocol layers including a MAC protocol, transport protocol, application protocol, etc.

In an example of operation, the transceiver 210 generates an electromagnetic wave based on the communication signal 110 or 112 to convey the data. The electromagnetic wave has at least one carrier frequency and at least one corresponding wavelength. The carrier frequency can be within a millimeter-wave frequency band of 30 GHz-300 GHz, such as 60 GHz or a carrier frequency in the range of 30-40 GHz or a lower frequency band of 300 MHz-30 GHz in the microwave frequency range such as 26-30 GHz, 11 GHz, 6 GHz or 3 GHz, but it will be appreciated that other carrier frequencies are possible in other embodiments. In one mode of operation, the transceiver 210 merely upconverts the communications signal or signals 110 or 112 for transmission of the electromagnetic signal in the microwave or millimeter-wave band as a guided electromagnetic wave that is guided by or bound to the transmission medium 125. In another mode of operation, the communications interface 205 either converts the communication signal 110 or 112 to a baseband or near baseband signal or extracts the data from the communication signal 110 or 112 and the transceiver 210 modulates a high-frequency carrier with the data, the baseband or near baseband signal for transmission. It should be appreciated that the transceiver 210 can modulate the data received via the communication signal 110 or 112 to preserve one or more data communication protocols of the communication signal 110 or 112 either by encapsulation in the payload of a different protocol or by simple frequency shifting. In the alternative, the transceiver 210 can otherwise translate the data received via the communication signal 110 or 112 to a protocol that is different from the data communication protocol or protocols of the communication signal 110 or 112.

In an example of operation, the coupler 220 couples the electromagnetic wave to the transmission medium 125 as a guided electromagnetic wave to convey the communications signal or signals 110 or 112. While the prior description has focused on the operation of the transceiver 210 as a transmitter, the transceiver 210 can also operate to receive electromagnetic waves that convey other data from the single wire transmission medium via the coupler 220 and to generate communications signals 110 or 112, via communications interface 205 that includes the other data. Consider embodiments where an additional guided electromagnetic wave conveys other data that also propagates along the transmission medium 125. The coupler 220 can also couple this additional electromagnetic wave from the transmission medium 125 to the transceiver 210 for reception.

The transmission device 101 or 102 includes an optional training controller 230. In an example embodiment, the training controller 230 is implemented by a standalone processor or a processor that is shared with one or more other components of the transmission device 101 or 102. The training controller 230 selects the carrier frequencies, modulation schemes and/or guided wave modes for the guided electromagnetic waves based on feedback data received by the transceiver 210 from at least one remote transmission device coupled to receive the guided electromagnetic wave.

In an example embodiment, a guided electromagnetic wave transmitted by a remote transmission device 101 or 102 conveys data that also propagates along the transmission medium 125. The data from the remote transmission device 101 or 102 can be generated to include the feedback data. In operation, the coupler 220 also couples the guided electromagnetic wave from the transmission medium 125 and the transceiver receives the electromagnetic wave and processes the electromagnetic wave to extract the feedback data.

In an example embodiment, the training controller 230 operates based on the feedback data to evaluate a plurality of candidate frequencies, modulation schemes and/or transmission modes to select a carrier frequency, modulation scheme and/or transmission mode to enhance performance, such as throughput, signal strength, reduce propagation loss, etc.

Consider the following example: a transmission device 101 begins operation under control of the training controller 230 by sending a plurality of guided waves as test signals such as pilot waves or other test signals at a corresponding plurality of candidate frequencies and/or candidate modes directed to a remote transmission device 102 coupled to the transmission medium 125. The guided waves can include, in addition or in the alternative, test data. The test data can indicate the particular candidate frequency and/or guide-wave mode of the signal. In an embodiment, the training controller 230 at the remote transmission device 102 receives the test signals and/or test data from any of the guided waves that were properly received and determines the best candidate frequency and/or guided wave mode, a set of acceptable candidate frequencies and/or guided wave modes, or a rank ordering of candidate frequencies and/or guided wave modes. This selection of candidate frequenc(ies) or/and guided-mode(s) are generated by the training controller 230 based on one or more optimizing criteria such as received signal strength, bit error rate, packet error rate, signal to noise ratio, propagation loss, etc. The training controller 230 generates feedback data that indicates the selection of candidate frequenc(ies) or/and guided wave mode(s) and sends the feedback data to the transceiver 210 for transmission to the transmission device 101. The transmission device 101 and 102 can then communicate data with one another based on the selection of candidate frequenc(ies) or/and guided wave mode(s).

In other embodiments, the guided electromagnetic waves that contain the test signals and/or test data are reflected back, repeated back or otherwise looped back by the remote transmission device 102 to the transmission device 101 for reception and analysis by the training controller 230 of the transmission device 101 that initiated these waves. For example, the transmission device 101 can send a signal to the remote transmission device 102 to initiate a test mode where a physical reflector is switched on the line, a termination impedance is changed to cause reflections, a loop back mode is switched on to couple electromagnetic waves back to the source transmission device 102, and/or a repeater mode is enabled to amplify and retransmit the electromagnetic waves back to the source transmission device 102. The training controller 230 at the source transmission device 102 receives the test signals and/or test data from any of the guided waves that were properly received and determines selection of candidate frequenc(ies) or/and guided wave mode(s).

While the procedure above has been described in a start-up or initialization mode of operation, each transmission device 101 or 102 can send test signals, evaluate candidate frequencies or guided wave modes via non-test such as normal transmissions or otherwise evaluate candidate frequencies or guided wave modes at other times or continuously as well. In an example embodiment, the communication protocol between the transmission devices 101 and 102 can include an on-request or periodic test mode where either full testing or more limited testing of a subset of candidate frequencies and guided wave modes are tested and evaluated. In other modes of operation, the re-entry into such a test mode can be triggered by a degradation of performance due to a disturbance, weather conditions, etc. In an example embodiment, the receiver bandwidth of the transceiver 210 is either sufficiently wide or swept to receive all candidate frequencies or can be selectively adjusted by the training controller 230 to a training mode where the receiver bandwidth of the transceiver 210 is sufficiently wide or swept to receive all candidate frequencies.

Referring now to FIG. 3, a graphical diagram 300 illustrating an example, non-limiting embodiment of an electromagnetic field distribution is shown. In this embodiment, a transmission medium 125 in air includes an inner conductor 301 and an insulating jacket 302 of dielectric material, as shown in cross section. The diagram 300 includes different gray-scales that represent differing electromagnetic field strengths generated by the propagation of the guided wave having an asymmetrical and non-fundamental guided wave mode.

In particular, the electromagnetic field distribution corresponds to a modal "sweet spot" that enhances guided electromagnetic wave propagation along an insulated transmission medium and reduces end-to-end transmission loss. In this particular mode, electromagnetic waves are guided by the transmission medium 125 to propagate along an outer surface of the transmission medium--in this case, the outer surface of the insulating jacket 302. Electromagnetic waves are partially embedded in the insulator and partially radiating on the outer surface of the insulator. In this fashion, electromagnetic waves are "lightly" coupled to the insulator so as to enable electromagnetic wave propagation at long distances with low propagation loss.

As shown, the guided wave has a field structure that lies primarily or substantially outside of the transmission medium 125 that serves to guide the electromagnetic waves. The regions inside the conductor 301 have little or no field. Likewise regions inside the insulating jacket 302 have low field strength. The majority of the electromagnetic field strength is distributed in the lobes 304 at the outer surface of the insulating jacket 302 and in close proximity thereof. The presence of an asymmetric guided wave mode is shown by the high electromagnetic field strengths at the top and bottom of the outer surface of the insulating jacket 302 (in the orientation of the diagram)--as opposed to very small field strengths on the other sides of the insulating jacket 302.

The example shown corresponds to a 38 GHz electromagnetic wave guided by a wire with a diameter of 1.1 cm and a dielectric insulation of thickness of 0.36 cm. Because the electromagnetic wave is guided by the transmission medium 125 and the majority of the field strength is concentrated in the air outside of the insulating jacket 302 within a limited distance of the outer surface, the guided wave can propagate longitudinally down the transmission medium 125 with very low loss. In the example shown, this "limited distance" corresponds to a distance from the outer surface that is less than half the largest cross sectional dimension of the transmission medium 125. In this case, the largest cross sectional dimension of the wire corresponds to the overall diameter of 1.82 cm, however, this value can vary with the size and shape of the transmission medium 125. For example, should the transmission medium 125 be of a rectangular shape with a height of 0.3 cm and a width of 0.4 cm, the largest cross sectional dimension would be the diagonal of 0.5 cm and the corresponding limited distance would be 0.25 cm. The dimensions of the area containing the majority of the field strength also vary with the frequency, and in general, increase as carrier frequencies decrease.

It should also be noted that the components of a guided wave communication system, such as couplers and transmission media can have their own cut-off frequencies for each guided wave mode. The cut-off frequency generally sets forth the lowest frequency that a particular guided wave mode is designed to be supported by that particular component. In an example embodiment, the particular asymmetric mode of propagation shown is induced on the transmission medium 125 by an electromagnetic wave having a frequency that falls within a limited range (such as Fc to 2Fc) of the lower cut-off frequency Fc for this particular asymmetric mode. The lower cut-off frequency Fc is particular to the characteristics of transmission medium 125. For embodiments as shown that include an inner conductor 301 surrounded by an insulating jacket 302, this cutoff frequency can vary based on the dimensions and properties of the insulating jacket 302 and potentially the dimensions and properties of the inner conductor 301 and can be determined experimentally to have a desired mode pattern. It should be noted however, that similar effects can be found for a hollow dielectric or insulator without an inner conductor. In this case, the cutoff frequency can vary based on the dimensions and properties of the hollow dielectric or insulator.

At frequencies lower than the lower cut-off frequency, the asymmetric mode is difficult to induce in the transmission medium 125 and fails to propagate for all but trivial distances. As the frequency increases above the limited range of frequencies about the cut-off frequency, the asymmetric mode shifts more and more inward of the insulating jacket 302. At frequencies much larger than the cut-off frequency, the field strength is no longer concentrated outside of the insulating jacket, but primarily inside of the insulating jacket 302. While the transmission medium 125 provides strong guidance to the electromagnetic wave and propagation is still possible, ranges are more limited by increased losses due to propagation within the insulating jacket 302--as opposed to the surrounding air.

Referring now to FIG. 4, a graphical diagram 400 illustrating an example, non-limiting embodiment of an electromagnetic field distribution is shown. In particular, a cross section diagram 400, similar to FIG. 3 is shown with common reference numerals used to refer to similar elements. The example shown corresponds to a 60 GHz wave guided by a wire with a diameter of 1.1 cm and a dielectric insulation of thickness of 0.36 cm. Because the frequency of the guided wave is above the limited range of the cut-off frequency of this particular asymmetric mode, much of the field strength has shifted inward of the insulating jacket 302. In particular, the field strength is concentrated primarily inside of the insulating jacket 302. While the transmission medium 125 provides strong guidance to the electromagnetic wave and propagation is still possible, ranges are more limited when compared with the embodiment of FIG. 3, by increased losses due to propagation within the insulating jacket 302.

Referring now to FIG. 5A, a graphical diagram illustrating an example, non-limiting embodiment of a frequency response is shown. In particular, diagram 500 presents a graph of end-to-end loss (in dB) as a function of frequency, overlaid with electromagnetic field distributions 510, 520 and 530 at three points for a 200 cm insulated medium voltage wire. The boundary between the insulator and the surrounding air is represented by reference numeral 525 in each electromagnetic field distribution.

As discussed in conjunction with FIG. 3, an example of a desired asymmetric mode of propagation shown is induced on the transmission medium 125 by an electromagnetic wave having a frequency that falls within a limited range (such as Fc to 2Fc) of the lower cut-off frequency Fc of the transmission medium for this particular asymmetric mode. In particular, the electromagnetic field distribution 520 at 6 GHz falls within this modal "sweet spot" that enhances electromagnetic wave propagation along an insulated transmission medium and reduces end-to-end transmission loss. In this particular mode, guided waves are partially embedded in the insulator and partially radiating on the outer surface of the insulator. In this fashion, the electromagnetic waves are "lightly" coupled to the insulator so as to enable guided electromagnetic wave propagation at long distances with low propagation loss.

At lower frequencies represented by the electromagnetic field distribution 510 at 3 GHz, the asymmetric mode radiates more heavily generating higher propagation losses. At higher frequencies represented by the electromagnetic field distribution 530 at 9 GHz, the asymmetric mode shifts more and more inward of the insulating jacket providing too much absorption, again generating higher propagation losses.

Referring now to FIG. 5B, a graphical diagram 550 illustrating example, non-limiting embodiments of a longitudinal cross-section of a transmission medium 125, such as an insulated wire, depicting fields of guided electromagnetic waves at various operating frequencies is shown. As shown in diagram 556, when the guided electromagnetic waves are at approximately the cutoff frequency (f.sub.c) corresponding to the modal "sweet spot", the guided electromagnetic waves are loosely coupled to the insulated wire so that absorption is reduced, and the fields of the guided electromagnetic waves are bound sufficiently to reduce the amount radiated into the environment (e.g., air). Because absorption and radiation of the fields of the guided electromagnetic waves is low, propagation losses are consequently low, enabling the guided electromagnetic waves to propagate for longer distances.

As shown in diagram 554, propagation losses increase when an operating frequency of the guide electromagnetic waves increases above about two-times the cutoff frequency (f.sub.c)--or as referred to, above the range of the "sweet spot". More of the field strength of the electromagnetic wave is driven inside the insulating layer, increasing propagation losses. At frequencies much higher than the cutoff frequency (f.sub.c) the guided electromagnetic waves are strongly bound to the insulated wire as a result of the fields emitted by the guided electromagnetic waves being concentrated in the insulation layer of the wire, as shown in diagram 552. This in turn raises propagation losses further due to absorption of the guided electromagnetic waves by the insulation layer. Similarly, propagation losses increase when the operating frequency of the guided electromagnetic waves is substantially below the cutoff frequency (f.sub.c), as shown in diagram 558. At frequencies much lower than the cutoff frequency (f.sub.c) the guided electromagnetic waves are weakly (or nominally) bound to the insulated wire and thereby tend to radiate into the environment (e.g., air), which in turn, raises propagation losses due to radiation of the guided electromagnetic waves.

Referring now to FIG. 6, a graphical diagram 600 illustrating an example, non-limiting embodiment of an electromagnetic field distribution is shown. In this embodiment, a transmission medium 602 is a bare wire, as shown in cross section. The diagram 300 includes different gray-scales that represent differing electromagnetic field strengths generated by the propagation of a guided wave having a symmetrical and fundamental guided wave mode at a single carrier frequency.

In this particular mode, electromagnetic waves are guided by the transmission medium 602 to propagate along an outer surface of the transmission medium--in this case, the outer surface of the bare wire. Electromagnetic waves are "lightly" coupled to the wire so as to enable electromagnetic wave propagation at long distances with low propagation loss. As shown, the guided wave has a field structure that lies substantially outside of the transmission medium 602 that serves to guide the electromagnetic waves. The regions inside the conductor 602 have little or no field.

Referring now to FIG. 7, a block diagram 700 illustrating an example, non-limiting embodiment of an arc coupler is shown. In particular a coupling device is presented for use in a transmission device, such as transmission device 101 or 102 presented in conjunction with FIG. 1. The coupling device includes an arc coupler 704 coupled to a transmitter circuit 712 and termination or damper 714. The arc coupler 704 can be made of a dielectric material, or other low-loss insulator (e.g., Teflon, polyethylene, etc.), or made of a conducting (e.g., metallic, non-metallic, etc.) material, or any combination of the foregoing materials. As shown, the arc coupler 704 operates as a waveguide and has a wave 706 propagating as a guided wave about a waveguide surface of the arc coupler 704. In the embodiment shown, at least a portion of the arc coupler 704 can be placed near a wire 702 or other transmission medium, (such as transmission medium 125), in order to facilitate coupling between the arc coupler 704 and the wire 702 or other transmission medium, as described herein to launch the guided wave 708 on the wire. The arc coupler 704 can be placed such that a portion of the curved arc coupler 704 is tangential to, and parallel or substantially parallel to the wire 702. The portion of the arc coupler 704 that is parallel to the wire can be an apex of the curve, or any point where a tangent of the curve is parallel to the wire 702. When the arc coupler 704 is positioned or placed thusly, the wave 706 travelling along the arc coupler 704 couples, at least in part, to the wire 702, and propagates as guided wave 708 around or about the wire surface of the wire 702 and longitudinally along the wire 702. The guided wave 708 can be characterized as a surface wave or other electromagnetic wave that is guided by or bound to the wire 702 or other transmission medium.

A portion of the wave 706 that does not couple to the wire 702 propagates as a wave 710 along the arc coupler 704. It will be appreciated that the arc coupler 704 can be configured and arranged in a variety of positions in relation to the wire 702 to achieve a desired level of coupling or non-coupling of the wave 706 to the wire 702. For example, the curvature and/or length of the arc coupler 704 that is parallel or substantially parallel, as well as its separation distance (which can include zero separation distance in an embodiment), to the wire 702 can be varied without departing from example embodiments. Likewise, the arrangement of arc coupler 704 in relation to the wire 702 may be varied based upon considerations of the respective intrinsic characteristics (e.g., thickness, composition, electromagnetic properties, etc.) of the wire 702 and the arc coupler 704, as well as the characteristics (e.g., frequency, energy level, etc.) of the waves 706 and 708.

The guided wave 708 stays parallel or substantially parallel to the wire 702, even as the wire 702 bends and flexes. Bends in the wire 702 can increase transmission losses, which are also dependent on wire diameters, frequency, and materials. If the dimensions of the arc coupler 704 are chosen for efficient power transfer, most of the power in the wave 706 is transferred to the wire 702, with little power remaining in wave 710. It will be appreciated that the guided wave 708 can still be multi-modal in nature (discussed herein), including having modes that are non-fundamental or asymmetric, while traveling along a path that is parallel or substantially parallel to the wire 702, with or without a fundamental transmission mode. In an embodiment, non-fundamental or asymmetric modes can be utilized to minimize transmission losses and/or obtain increased propagation distances.

It is noted that the term parallel is generally a geometric construct which often is not exactly achievable in real systems. Accordingly, the term parallel as utilized in the subject disclosure represents an approximation rather than an exact configuration when used to describe embodiments disclosed in the subject disclosure. In an embodiment, substantially parallel can include approximations that are within 30 degrees of true parallel in all dimensions.

In an embodiment, the wave 706 can exhibit one or more wave propagation modes. The arc coupler modes can be dependent on the shape and/or design of the coupler 704. The one or more arc coupler modes of wave 706 can generate, influence, or impact one or more wave propagation modes of the guided wave 708 propagating along wire 702. It should be particularly noted however that the guided wave modes present in the guided wave 706 may be the same or different from the guided wave modes of the guided wave 708. In this fashion, one or more guided wave modes of the guided wave 706 may not be transferred to the guided wave 708, and further one or more guided wave modes of guided wave 708 may not have been present in guided wave 706. It should also be noted that the cut-off frequency of the arc coupler 704 for a particular guided wave mode may be different than the cutoff frequency of the wire 702 or other transmission medium for that same mode. For example, while the wire 702 or other transmission medium may be operated slightly above its cutoff frequency for a particular guided wave mode, the arc coupler 704 may be operated well above its cut-off frequency for that same mode for low loss, slightly below its cut-off frequency for that same mode to, for example, induce greater coupling and power transfer, or some other point in relation to the arc coupler's cutoff frequency for that mode.

In an embodiment, the wave propagation modes on the wire 702 can be similar to the arc coupler modes since both waves 706 and 708 propagate about the outside of the arc coupler 704 and wire 702 respectively. In some embodiments, as the wave 706 couples to the wire 702, the modes can change form, or new modes can be created or generated, due to the coupling between the arc coupler 704 and the wire 702. For example, differences in size, material, and/or impedances of the arc coupler 704 and wire 702 may create additional modes not present in the arc coupler modes and/or suppress some of the arc coupler modes. The wave propagation modes can comprise the fundamental transverse electromagnetic mode (Quasi-TEM.sub.00), where only small electric and/or magnetic fields extend in the direction of propagation, and the electric and magnetic fields extend radially outwards while the guided wave propagates along the wire. This guided wave mode can be donut shaped, where few of the electromagnetic fields exist within the arc coupler 704 or wire 702.

Waves 706 and 708 can comprise a fundamental TEM mode where the fields extend radially outwards, and also comprise other, non-fundamental (e.g., asymmetric, higher-level, etc.) modes. While particular wave propagation modes are discussed above, other wave propagation modes are likewise possible such as transverse electric (TE) and transverse magnetic (TM) modes, based on the frequencies employed, the design of the arc coupler 704, the dimensions and composition of the wire 702, as well as its surface characteristics, its insulation if present, the electromagnetic properties of the surrounding environment, etc. It should be noted that, depending on the frequency, the electrical and physical characteristics of the wire 702 and the particular wave propagation modes that are generated, guided wave 708 can travel along the conductive surface of an oxidized uninsulated wire, an unoxidized uninsulated wire, an insulated wire and/or along the insulating surface of an insulated wire.

In an embodiment, a diameter of the arc coupler 704 is smaller than the diameter of the wire 702. For the millimeter-band wavelength being used, the arc coupler 704 supports a single waveguide mode that makes up wave 706. This single waveguide mode can change as it couples to the wire 702 as guided wave 708. If the arc coupler 704 were larger, more than one waveguide mode can be supported, but these additional waveguide modes may not couple to the wire 702 as efficiently, and higher coupling losses can result. However, in some alternative embodiments, the diameter of the arc coupler 704 can be equal to or larger than the diameter of the wire 702, for example, where higher coupling losses are desirable or when used in conjunction with other techniques to otherwise reduce coupling losses (e.g., impedance matching with tapering, etc.).

In an embodiment, the wavelength of the waves 706 and 708 are comparable in size, or smaller than a circumference of the arc coupler 704 and the wire 702. In an example, if the wire 702 has a diameter of 0.5 cm, and a corresponding circumference of around 1.5 cm, the wavelength of the transmission is around 1.5 cm or less, corresponding to a frequency of 70 GHz or greater. In another embodiment, a suitable frequency of the transmission and the carrier-wave signal is in the range of 30-100 GHz, perhaps around 30-60 GHz, and around 38 GHz in one example. In an embodiment, when the circumference of the arc coupler 704 and wire 702 is comparable in size to, or greater, than a wavelength of the transmission, the waves 706 and 708 can exhibit multiple wave propagation modes including fundamental and/or non-fundamental (symmetric and/or asymmetric) modes that propagate over sufficient distances to support various communication systems described herein. The waves 706 and 708 can therefore comprise more than one type of electric and magnetic field configuration. In an embodiment, as the guided wave 708 propagates down the wire 702, the electrical and magnetic field configurations will remain the same from end to end of the wire 702. In other embodiments, as the guided wave 708 encounters interference (distortion or obstructions) or loses energy due to transmission losses or scattering, the electric and magnetic field configurations can change as the guided wave 708 propagates down wire 702.

In an embodiment, the arc coupler 704 can be composed of nylon, Teflon, polyethylene, a polyamide, or other plastics. In other embodiments, other dielectric materials are possible. The wire surface of wire 702 can be metallic with either a bare metallic surface, or can be insulated using plastic, dielectric, insulator or other coating, jacket or sheathing. In an embodiment, a dielectric or otherwise non-conducting/insulated waveguide can be paired with either a bare/metallic wire or insulated wire. In other embodiments, a metallic and/or conductive waveguide can be paired with a bare/metallic wire or insulated wire. In an embodiment, an oxidation layer on the bare metallic surface of the wire 702 (e.g., resulting from exposure of the bare metallic surface to oxygen/air) can also provide insulating or dielectric properties similar to those provided by some insulators or sheathings.

It is noted that the graphical representations of waves 706, 708 and 710 are presented merely to illustrate the principles that wave 706 induces or otherwise launches a guided wave 708 on a wire 702 that operates, for example, as a single wire transmission line. Wave 710 represents the portion of wave 706 that remains on the arc coupler 704 after the generation of guided wave 708. The actual electric and magnetic fields generated as a result of such wave propagation may vary depending on the frequencies employed, the particular wave propagation mode or modes, the design of the arc coupler 704, the dimensions and composition of the wire 702, as well as its surface characteristics, its optional insulation, the electromagnetic properties of the surrounding environment, etc.

It is noted that arc coupler 704 can include a termination circuit or damper 714 at the end of the arc coupler 704 that can absorb leftover radiation or energy from wave 710. The termination circuit or damper 714 can prevent and/or minimize the leftover radiation or energy from wave 710 reflecting back toward transmitter circuit 712. In an embodiment, the termination circuit or damper 714 can include termination resistors, and/or other components that perform impedance matching to attenuate reflection. In some embodiments, if the coupling efficiencies are high enough, and/or wave 710 is sufficiently small, it may not be necessary to use a termination circuit or damper 714. For the sake of simplicity, these transmitter 712 and termination circuits or dampers 714 may not be depicted in the other figures, but in those embodiments, transmitter and termination circuits or dampers may possibly be used.

Further, while a single arc coupler 704 is presented that generates a single guided wave 708, multiple arc couplers 704 placed at different points along the wire 702 and/or at different azimuthal orientations about the wire can be employed to generate and receive multiple guided waves 708 at the same or different frequencies, at the same or different phases, at the same or different wave propagation modes.

FIG. 8, a block diagram 800 illustrating an example, non-limiting embodiment of an arc coupler is shown. In the embodiment shown, at least a portion of the coupler 704 can be placed near a wire 702 or other transmission medium, (such as transmission medium 125), in order to facilitate coupling between the arc coupler 704 and the wire 702 or other transmission medium, to extract a portion of the guided wave 806 as a guided wave 808 as described herein. The arc coupler 704 can be placed such that a portion of the curved arc coupler 704 is tangential to, and parallel or substantially parallel to the wire 702. The portion of the arc coupler 704 that is parallel to the wire can be an apex of the curve, or any point where a tangent of the curve is parallel to the wire 702. When the arc coupler 704 is positioned or placed thusly, the wave 806 travelling along the wire 702 couples, at least in part, to the arc coupler 704, and propagates as guided wave 808 along the arc coupler 704 to a receiving device (not expressly shown). A portion of the wave 806 that does not couple to the arc coupler propagates as wave 810 along the wire 702 or other transmission medium.

In an embodiment, the wave 806 can exhibit one or more wave propagation modes. The arc coupler modes can be dependent on the shape and/or design of the coupler 704. The one or more modes of guided wave 806 can generate, influence, or impact one or more guide-wave modes of the guided wave 808 propagating along the arc coupler 704. It should be particularly noted however that the guided wave modes present in the guided wave 806 may be the same or different from the guided wave modes of the guided wave 808. In this fashion, one or more guided wave modes of the guided wave 806 may not be transferred to the guided wave 808, and further one or more guided wave modes of guided wave 808 may not have been present in guided wave 806.

Referring now to FIG. 9A, a block diagram 900 illustrating an example, non-limiting embodiment of a stub coupler is shown. In particular a coupling device that includes stub coupler 904 is presented for use in a transmission device, such as transmission device 101 or 102 presented in conjunction with FIG. 1. The stub coupler 904 can be made of a dielectric material, or other low-loss insulator (e.g., Teflon, polyethylene and etc.), or made of a conducting (e.g., metallic, non-metallic, etc.) material, or any combination of the foregoing materials. As shown, the stub coupler 904 operates as a waveguide and has a wave 906 propagating as a guided wave about a waveguide surface of the stub coupler 904. In the embodiment shown, at least a portion of the stub coupler 904 can be placed near a wire 702 or other transmission medium, (such as transmission medium 125), in order to facilitate coupling between the stub coupler 904 and the wire 702 or other transmission medium, as described herein to launch the guided wave 908 on the wire.

In an embodiment, the stub coupler 904 is curved, and an end of the stub coupler 904 can be tied, fastened, or otherwise mechanically coupled to a wire 702. When the end of the stub coupler 904 is fastened to the wire 702, the end of the stub coupler 904 is parallel or substantially parallel to the wire 702. Alternatively, another portion of the dielectric waveguide beyond an end can be fastened or coupled to wire 702 such that the fastened or coupled portion is parallel or substantially parallel to the wire 702. The fastener 910 can be a nylon cable tie or other type of non-conducting/dielectric material that is either separate from the stub coupler 904 or constructed as an integrated component of the stub coupler 904. The stub coupler 904 can be adjacent to the wire 702 without surrounding the wire 702.

Like the arc coupler 704 described in conjunction with FIG. 7, when the stub coupler 904 is placed with the end parallel to the wire 702, the guided wave 906 travelling along the stub coupler 904 couples to the wire 702, and propagates as guided wave 908 about the wire surface of the wire 702. In an example embodiment, the guided wave 908 can be characterized as a surface wave or other electromagnetic wave.

It is noted that the graphical representations of waves 906 and 908 are presented merely to illustrate the principles that wave 906 induces or otherwise launches a guided wave 908 on a wire 702 that operates, for example, as a single wire transmission line. The actual electric and magnetic fields generated as a result of such wave propagation may vary depending on one or more of the shape and/or design of the coupler, the relative position of the dielectric waveguide to the wire, the frequencies employed, the design of the stub coupler 904, the dimensions and composition of the wire 702, as well as its surface characteristics, its optional insulation, the electromagnetic properties of the surrounding environment, etc.

In an embodiment, an end of stub coupler 904 can taper towards the wire 702 in order to increase coupling efficiencies. Indeed, the tapering of the end of the stub coupler 904 can provide impedance matching to the wire 702 and reduce reflections, according to an example embodiment of the subject disclosure. For example, an end of the stub coupler 904 can be gradually tapered in order to obtain a desired level of coupling between waves 906 and 908 as illustrated in FIG. 9A.

In an embodiment, the fastener 910 can be placed such that there is a short length of the stub coupler 904 between the fastener 910 and an end of the stub coupler 904. Maximum coupling efficiencies are realized in this embodiment when the length of the end of the stub coupler 904 that is beyond the fastener 910 is at least several wavelengths long for whatever frequency is being transmitted.

Turning now to FIG. 9B, a diagram 950 illustrating an example, non-limiting embodiment of an electromagnetic distribution in accordance with various aspects described herein is shown. In particular, an electromagnetic distribution is presented in two dimensions for a transmission device that includes coupler 952, shown in an example stub coupler constructed of a dielectric material. The coupler 952 couples an electromagnetic wave for propagation as a guided wave along an outer surface of a wire 702 or other transmission medium.

The coupler 952 guides the electromagnetic wave to a junction at x.sub.0 via a symmetrical guided wave mode. While some of the energy of the electromagnetic wave that propagates along the coupler 952 is outside of the coupler 952, the majority of the energy of this electromagnetic wave is contained within the coupler 952. The junction at x.sub.0 couples the electromagnetic wave to the wire 702 or other transmission medium at an azimuthal angle corresponding to the bottom of the transmission medium. This coupling induces an electromagnetic wave that is guided to propagate along the outer surface of the wire 702 or other transmission medium via at least one guided wave mode in direction 956. The majority of the energy of the guided electromagnetic wave is outside or, but in close proximity to the outer surface of the wire 702 or other transmission medium. In the example shown, the junction at x.sub.0 forms an electromagnetic wave that propagates via both a symmetrical mode and at least one asymmetrical surface mode, such as the first order mode presented in conjunction with FIG. 3, that skims the surface of the wire 702 or other transmission medium.

It is noted that the graphical representations of guided waves are presented merely to illustrate an example of guided wave coupling and propagation. The actual electric and magnetic fields generated as a result of such wave propagation may vary depending on the frequencies employed, the design and/or configuration of the coupler 952, the dimensions and composition of the wire 702 or other transmission medium, as well as its surface characteristics, its insulation if present, the electromagnetic properties of the surrounding environment, etc.

Turning now to FIG. 10A, illustrated is a block diagram 1000 of an example, non-limiting embodiment of a coupler and transceiver system in accordance with various aspects described herein. The system is an example of transmission device 101 or 102. In particular, the communication interface 1008 is an example of communications interface 205, the stub coupler 1002 is an example of coupler 220, and the transmitter/receiver device 1006, diplexer 1016, power amplifier 1014, low noise amplifier 1018, frequency mixers 1010 and 1020 and local oscillator 1012 collectively form an example of transceiver 210.

In operation, the transmitter/receiver device 1006 launches and receives waves (e.g., guided wave 1004 onto stub coupler 1002). The guided waves 1004 can be used to transport signals received from and sent to a host device, base station, mobile devices, a building or other device by way of a communications interface 1008. The communications interface 1008 can be an integral part of system 1000. Alternatively, the communications interface 1008 can be tethered to system 1000. The communications interface 1008 can comprise a wireless interface for interfacing to the host device, base station, mobile devices, a building or other device utilizing any of various wireless signaling protocols (e.g., LTE, WiFi, WiMAX, IEEE 802.xx, etc.) including an infrared protocol such as an infrared data association (IrDA) protocol or other line of sight optical protocol. The communications interface 1008 can also comprise a wired interface such as a fiber optic line, coaxial cable, twisted pair, category 5 (CAT-5) cable or other suitable wired or optical mediums for communicating with the host device, base station, mobile devices, a building or other device via a protocol such as an Ethernet protocol, universal serial bus (USB) protocol, a data over cable service interface specification (DOCSIS) protocol, a digital subscriber line (DSL) protocol, a Firewire (IEEE 1394) protocol, or other wired or optical protocol. For embodiments where system 1000 functions as a repeater, the communications interface 1008 may not be necessary.

The output signals (e.g., Tx) of the communications interface 1008 can be combined with a carrier wave (e.g., millimeter-wave carrier wave) generated by a local oscillator 1012 at frequency mixer 1010. Frequency mixer 1010 can use heterodyning techniques or other frequency shifting techniques to frequency shift the output signals from communications interface 1008. For example, signals sent to and from the communications interface 1008 can be modulated signals such as orthogonal frequency division multiplexed (OFDM) signals formatted in accordance with a Long-Term Evolution (LTE) wireless protocol or other wireless 3G, 4G, 5G or higher voice and data protocol, a Zigbee, WIMAX, UltraWideband or IEEE 802.11 wireless protocol; a wired protocol such as an Ethernet protocol, universal serial bus (USB) protocol, a data over cable service interface specification (DOCSIS) protocol, a digital subscriber line (DSL) protocol, a Firewire (IEEE 1394) protocol or other wired or wireless protocol. In an example embodiment, this frequency conversion can be done in the analog domain, and as a result, the frequency shifting can be done without regard to the type of communications protocol used by a base station, mobile devices, or in-building devices. As new communications technologies are developed, the communications interface 1008 can be upgraded (e.g., updated with software, firmware, and/or hardware) or replaced and the frequency shifting and transmission apparatus can remain, simplifying upgrades. The carrier wave can then be sent to a power amplifier ("PA") 1014 and can be transmitted via the transmitter receiver device 1006 via the diplexer 1016.

Signals received from the transmitter/receiver device 1006 that are directed towards the communications interface 1008 can be separated from other signals via diplexer 1016. The received signal can then be sent to low noise amplifier ("LNA") 1018 for amplification. A frequency mixer 1020, with help from local oscillator 1012 can downshift the received signal (which is in the millimeter-wave band or around 38 GHz in some embodiments) to the native frequency. The communications interface 1008 can then receive the transmission at an input port (Rx).

In an embodiment, transmitter/receiver device 1006 can include a cylindrical or non-cylindrical metal (which, for example, can be hollow in an embodiment, but not necessarily drawn to scale) or other conducting or non-conducting waveguide and an end of the stub coupler 1002 can be placed in or in proximity to the waveguide or the transmitter/receiver device 1006 such that when the transmitter/receiver device 1006 generates a transmission, the guided wave couples to stub coupler 1002 and propagates as a guided wave 1004 about the waveguide surface of the stub coupler 1002. In some embodiments, the guided wave 1004 can propagate in part on the outer surface of the stub coupler 1002 and in part inside the stub coupler 1002. In other embodiments, the guided wave 1004 can propagate substantially or completely on the outer surface of the stub coupler 1002. In yet other embodiments, the guided wave 1004 can propagate substantially or completely inside the stub coupler 1002. In this latter embodiment, the guided wave 1004 can radiate at an end of the stub coupler 1002 (such as the tapered end shown in FIG. 4) for coupling to a transmission medium such as a wire 702 of FIG. 7. Similarly, if guided wave 1004 is incoming (coupled to the stub coupler 1002 from a wire 702), guided wave 1004 then enters the transmitter/receiver device 1006 and couples to the cylindrical waveguide or conducting waveguide. While transmitter/receiver device 1006 is shown to include a separate waveguide--an antenna, cavity resonator, klystron, magnetron, travelling wave tube, or other radiating element can be employed to induce a guided wave on the coupler 1002, with or without the separate waveguide.

In an embodiment, stub coupler 1002 can be wholly constructed of a dielectric material (or another suitable insulating material), without any metallic or otherwise conducting materials therein. Stub coupler 1002 can be composed of nylon, Teflon, polyethylene, a polyamide, other plastics, or other materials that are non-conducting and suitable for facilitating transmission of electromagnetic waves at least in part on an outer surface of such materials. In another embodiment, stub coupler 1002 can include a core that is conducting/metallic, and have an exterior dielectric surface. Similarly, a transmission medium that couples to the stub coupler 1002 for propagating electromagnetic waves induced by the stub coupler 1002 or for supplying electromagnetic waves to the stub coupler 1002 can, in addition to being a bare or insulated wire, be wholly constructed of a dielectric material (or another suitable insulating material), without any metallic or otherwise conducting materials therein.

It is noted that although FIG. 10A shows that the opening of transmitter receiver device 1006 is much wider than the stub coupler 1002, this is not to scale, and that in other embodiments the width of the stub coupler 1002 is comparable or slightly smaller than the opening of the hollow waveguide. It is also not shown, but in an embodiment, an end of the coupler 1002 that is inserted into the transmitter/receiver device 1006 tapers down in order to reduce reflection and increase coupling efficiencies.

Before coupling to the stub coupler 1002, the one or more waveguide modes of the guided wave generated by the transmitter/receiver device 1006 can couple to the stub coupler 1002 to induce one or more wave propagation modes of the guided wave 1004. The wave propagation modes of the guided wave 1004 can be different than the hollow metal waveguide modes due to the different characteristics of the hollow metal waveguide and the dielectric waveguide. For instance, wave propagation modes of the guided wave 1004 can comprise the fundamental transverse electromagnetic mode (Quasi-TEM.sub.00), where only small electrical and/or magnetic fields extend in the direction of propagation, and the electric and magnetic fields extend radially outwards from the stub coupler 1002 while the guided waves propagate along the stub coupler 1002. The fundamental transverse electromagnetic mode wave propagation mode may or may not exist inside a waveguide that is hollow. Therefore, the hollow metal waveguide modes that are used by transmitter/receiver device 1006 are waveguide modes that can couple effectively and efficiently to wave propagation modes of stub coupler 1002.

It will be appreciated that other constructs or combinations of the transmitter/receiver device 1006 and stub coupler 1002 are possible. For example, a stub coupler 1002' can be placed tangentially or in parallel (with or without a gap) with respect to an outer surface of the hollow metal waveguide of the transmitter/receiver device 1006' (corresponding circuitry not shown) as depicted by reference 1000' of FIG. 10B. In another embodiment, not shown by reference 1000', the stub coupler 1002' can be placed inside the hollow metal waveguide of the transmitter/receiver device 1006' without an axis of the stub coupler 1002' being coaxially aligned with an axis of the hollow metal waveguide of the transmitter/receiver device 1006'. In either of these embodiments, the guided wave generated by the transmitter/receiver device 1006' can couple to a surface of the stub coupler 1002' to induce one or more wave propagation modes of the guided wave 1004' on the stub coupler 1002' including a fundamental mode (e.g., a symmetric mode) and/or a non-fundamental mode (e.g., asymmetric mode).

In one embodiment, the guided wave 1004' can propagate in part on the outer surface of the stub coupler 1002' and in part inside the stub coupler 1002'. In another embodiment, the guided wave 1004' can propagate substantially or completely on the outer surface of the stub coupler 1002'. In yet other embodiments, the guided wave 1004' can propagate substantially or completely inside the stub coupler 1002'. In this latter embodiment, the guided wave 1004' can radiate at an end of the stub coupler 1002' (such as the tapered end shown in FIG. 9) for coupling to a transmission medium such as a wire 702 of FIG. 9.

It will be further appreciated that other constructs the transmitter/receiver device 1006 are possible. For example, a hollow metal waveguide of a transmitter/receiver device 1006'' (corresponding circuitry not shown), depicted in FIG. 10B as reference 1000'', can be placed tangentially or in parallel (with or without a gap) with respect to an outer surface of a transmission medium such as the wire 702 of FIG. 4 without the use of the stub coupler 1002. In this embodiment, the guided wave generated by the transmitter/receiver device 1006'' can couple to a surface of the wire 702 to induce one or more wave propagation modes of a guided wave 908 on the wire 702 including a fundamental mode (e.g., a symmetric mode) and/or a non-fundamental mode (e.g., asymmetric mode). In another embodiment, the wire 702 can be positioned inside a hollow metal waveguide of a transmitter/receiver device 1006''' (corresponding circuitry not shown) so that an axis of the wire 702 is coaxially (or not coaxially) aligned with an axis of the hollow metal waveguide without the use of the stub coupler 1002--see FIG. 10B reference 1000'''. In this embodiment, the guided wave generated by the transmitter/receiver device 1006''' can couple to a surface of the wire 702 to induce one or more wave propagation modes of a guided wave 908 on the wire including a fundamental mode (e.g., a symmetric mode) and/or a non-fundamental mode (e.g., asymmetric mode).

In the embodiments of 1000'' and 1000''', for a wire 702 having an insulated outer surface, the guided wave 908 can propagate in part on the outer surface of the insulator and in part inside the insulator. In embodiments, the guided wave 908 can propagate substantially or completely on the outer surface of the insulator, or substantially or completely inside the insulator. In the embodiments of 1000'' and 1000''', for a wire 702 that is a bare conductor, the guided wave 908 can propagate in part on the outer surface of the conductor and in part inside the conductor. In another embodiment, the guided wave 908 can propagate substantially or completely on the outer surface of the conductor.

Referring now to FIG. 11, a block diagram 1100 illustrating an example, non-limiting embodiment of a dual stub coupler is shown. In particular, a dual coupler design is presented for use in a transmission device, such as transmission device 101 or 102 presented in conjunction with FIG. 1. In an embodiment, two or more couplers (such as the stub couplers 1104 and 1106) can be positioned around a wire 1102 in order to receive guided wave 1108. In an embodiment, one coupler is enough to receive the guided wave 1108. In that case, guided wave 1108 couples to coupler 1104 and propagates as guided wave 1110. If the field structure of the guided wave 1108 oscillates or undulates around the wire 1102 due to the particular guided wave mode(s) or various outside factors, then coupler 1106 can be placed such that guided wave 1108 couples to coupler 1106. In some embodiments, four or more couplers can be placed around a portion of the wire 1102, e.g., at 90 degrees or another spacing with respect to each other, in order to receive guided waves that may oscillate or rotate around the wire 1102, that have been induced at different azimuthal orientations or that have non-fundamental or higher order modes that, for example, have lobes and/or nulls or other asymmetries that are orientation dependent. However, it will be appreciated that there may be less than or more than four couplers placed around a portion of the wire 1102 without departing from example embodiments.

It should be noted that while couplers 1106 and 1104 are illustrated as stub couplers, any other of the coupler designs described herein including arc couplers, antenna or horn couplers, magnetic couplers, etc., could likewise be used. It will also be appreciated that while some example embodiments have presented a plurality of couplers around at least a portion of a wire 1102, this plurality of couplers can also be considered as part of a single coupler system having multiple coupler subcomponents. For example, two or more couplers can be manufactured as single system that can be installed around a wire in a single installation such that the couplers are either pre-positioned or adjustable relative to each other (either manually or automatically with a controllable mechanism such as a motor or other actuator) in accordance with the single system.

Receivers coupled to couplers 1106 and 1104 can use diversity combining to combine signals received from both couplers 1106 and 1104 in order to maximize the signal quality. In other embodiments, if one or the other of the couplers 1104 and 1106 receive a transmission that is above a predetermined threshold, receivers can use selection diversity when deciding which signal to use. Further, while reception by a plurality of couplers 1106 and 1104 is illustrated, transmission by couplers 1106 and 1104 in the same configuration can likewise take place. In particular, a wide range of multi-input multi-output (MIMO) transmission and reception techniques can be employed for transmissions where a transmission device, such as transmission device 101 or 102 presented in conjunction with FIG. 1 includes multiple transceivers and multiple couplers.

It is noted that the graphical representations of waves 1108 and 1110 are presented merely to illustrate the principles that guided wave 1108 induces or otherwise launches a wave 1110 on a coupler 1104. The actual electric and magnetic fields generated as a result of such wave propagation may vary depending on the frequencies employed, the design of the coupler 1104, the dimensions and composition of the wire 1102, as well as its surface characteristics, its insulation if any, the electromagnetic properties of the surrounding environment, etc.

Referring now to FIG. 12, a block diagram 1200 illustrating an example, non-limiting embodiment of a repeater system is shown. In particular, a repeater device 1210 is presented for use in a transmission device, such as transmission device 101 or 102 presented in conjunction with FIG. 1. In this system, two couplers 1204 and 1214 can be placed near a wire 1202 or other transmission medium such that guided waves 1205 propagating along the wire 1202 are extracted by coupler 1204 as wave 1206 (e.g. as a guided wave), and then are boosted or repeated by repeater device 1210 and launched as a wave 1216 (e.g. as a guided wave) onto coupler 1214. The wave 1216 can then be launched on the wire 1202 and continue to propagate along the wire 1202 as a guided wave 1217. In an embodiment, the repeater device 1210 can receive at least a portion of the power utilized for boosting or repeating through magnetic coupling with the wire 1202, for example, when the wire 1202 is a power line or otherwise contains a power-carrying conductor. It should be noted that while couplers 1204 and 1214 are illustrated as stub couplers, any other of the coupler designs described herein including arc couplers, antenna or horn couplers, magnetic couplers, or the like, could likewise be used.

In some embodiments, repeater device 1210 can repeat the transmission associated with wave 1206, and in other embodiments, repeater device 1210 can include a communications interface 205 that extracts data or other signals from the wave 1206 for supplying such data or signals to another network and/or one or more other devices as communication signals 110 or 112 and/or receiving communication signals 110 or 112 from another network and/or one or more other devices and launch guided wave 1216 having embedded therein the received communication signals 110 or 112. In a repeater configuration, receiver waveguide 1208 can receive the wave 1206 from the coupler 1204 and transmitter waveguide 1212 can launch guided wave 1216 onto coupler 1214 as guided wave 1217. Between receiver waveguide 1208 and transmitter waveguide 1212, the signal embedded in guided wave 1206 and/or the guided wave 1216 itself can be amplified to correct for signal loss and other inefficiencies associated with guided wave communications or the signal can be received and processed to extract the data contained therein and regenerated for transmission. In an embodiment, the receiver waveguide 1208 can be configured to extract data from the signal, process the data to correct for data errors utilizing for example error correcting codes, and regenerate an updated signal with the corrected data. The transmitter waveguide 1212 can then transmit guided wave 1216 with the updated signal embedded therein. In an embodiment, a signal embedded in guided wave 1206 can be extracted from the transmission and processed for communication with another network and/or one or more other devices via communications interface 205 as communication signals 110 or 112. Similarly, communication signals 110 or 112 received by the communications interface 205 can be inserted into a transmission of guided wave 1216 that is generated and launched onto coupler 1214 by transmitter waveguide 1212.

It is noted that although FIG. 12 shows guided wave transmissions 1206 and 1216 entering from the left and exiting to the right respectively, this is merely a simplification and is not intended to be limiting. In other embodiments, receiver waveguide 1208 and transmitter waveguide 1212 can also function as transmitters and receivers respectively, allowing the repeater device 1210 to be bi-directional.

In an embodiment, repeater device 1210 can be placed at locations where there are discontinuities or obstacles on the wire 1202 or other transmission medium. In the case where the wire 1202 is a power line, these obstacles can include transformers, connections, utility poles, and other such power line devices. The repeater device 1210 can help the guided (e.g., surface) waves jump over these obstacles on the line and boost the transmission power at the same time. In other embodiments, a coupler can be used to jump over the obstacle without the use of a repeater device. In that embodiment, both ends of the coupler can be tied or fastened to the wire, thus providing a path for the guided wave to travel without being blocked by the obstacle.

Turning now to FIG. 13, illustrated is a block diagram 1300 of an example, non-limiting embodiment of a bidirectional repeater in accordance with various aspects described herein. In particular, a bidirectional repeater device 1306 is presented for use in a transmission device, such as transmission device 101 or 102 presented in conjunction with FIG. 1. It should be noted that while the couplers are illustrated as stub couplers, any other of the coupler designs described herein including arc couplers, antenna or horn couplers, magnetic couplers, or the like, could likewise be used. The bidirectional repeater 1306 can employ diversity paths in the case of when two or more wires or other transmission media are present. Since guided wave transmissions have different transmission efficiencies and coupling efficiencies for transmission medium of different types such as insulated wires, un-insulated wires or other types of transmission media and further, if exposed to the elements, can be affected by weather, and other atmospheric conditions, it can be advantageous to selectively transmit on different transmission media at certain times. In various embodiments, the various transmission media can be designated as a primary, secondary, tertiary, etc. whether or not such designation indicates a preference of one transmission medium over another.

In the embodiment shown, the transmission media include an insulated or uninsulated wire 1302 and an insulated or uninsulated wire 1304 (referred to herein as wires 1302 and 1304, respectively). The repeater device 1306 uses a receiver coupler 1308 to receive a guided wave traveling along wire 1302 and repeats the transmission using transmitter waveguide 1310 as a guided wave along wire 1304. In other embodiments, repeater device 1306 can switch from the wire 1304 to the wire 1302, or can repeat the transmissions along the same paths. Repeater device 1306 can include sensors, or be in communication with sensors (or a network management system 1601 depicted in FIG. 16A) that indicate conditions that can affect the transmission. Based on the feedback received from the sensors, the repeater device 1306 can make the determination about whether to keep the transmission along the same wire, or transfer the transmission to the other wire.

Turning now to FIG. 14, illustrated is a block diagram 1400 illustrating an example, non-limiting embodiment of a bidirectional repeater system. In particular, a bidirectional repeater system is presented for use in a transmission device, such as transmission device 101 or 102 presented in conjunction with FIG. 1. The bidirectional repeater system includes waveguide coupling devices 1402 and 1404 that receive and transmit transmissions from other coupling devices located in a distributed antenna system or backhaul system.

In various embodiments, waveguide coupling device 1402 can receive a transmission from another waveguide coupling device, wherein the transmission has a plurality of subcarriers. Diplexer 1406 can separate the transmission from other transmissions, and direct the transmission to low-noise amplifier ("LNA") 1408. A frequency mixer 1428, with help from a local oscillator 1412, can downshift the transmission (which is in the millimeter-wave band or around 38 GHz in some embodiments) to a lower frequency, such as a cellular band (.about.1.9 GHz) for a distributed antenna system, a native frequency, or other frequency for a backhaul system. An extractor (or demultiplexer) 1432 can extract the signal on a subcarrier and direct the signal to an output component 1422 for optional amplification, buffering or isolation by power amplifier 1424 for coupling to communications interface 205. The communications interface 205 can further process the signals received from the power amplifier 1424 or otherwise transmit such signals over a wireless or wired interface to other devices such as a base station, mobile devices, a building, etc. For the signals that are not being extracted at this location, extractor 1432 can redirect them to another frequency mixer 1436, where the signals are used to modulate a carrier wave generated by local oscillator 1414. The carrier wave, with its subcarriers, is directed to a power amplifier ("PA") 1416 and is retransmitted by waveguide coupling device 1404 to another system, via diplexer 1420.

An LNA 1426 can be used to amplify, buffer or isolate signals that are received by the communication interface 205 and then send the signal to a multiplexer 1434 which merges the signal with signals that have been received from waveguide coupling device 1404. The signals received from coupling device 1404 have been split by diplexer 1420, and then passed through LNA 1418, and downshifted in frequency by frequency mixer 1438. When the signals are combined by multiplexer 1434, they are upshifted in frequency by frequency mixer 1430, and then boosted by PA 1410, and transmitted to another system by waveguide coupling device 1402. In an embodiment bidirectional repeater system can be merely a repeater without the output device 1422. In this embodiment, the multiplexer 1434 would not be utilized and signals from LNA 1418 would be directed to mixer 1430 as previously described. It will be appreciated that in some embodiments, the bidirectional repeater system could also be implemented using two distinct and separate unidirectional repeaters. In an alternative embodiment, a bidirectional repeater system could also be a booster or otherwise perform retransmissions without downshifting and upshifting. Indeed in example embodiment, the retransmissions can be based upon receiving a signal or guided wave and performing some signal or guided wave processing or reshaping, filtering, and/or amplification, prior to retransmission of the signal or guided wave.

Referring now to FIG. 15, a block diagram 1500 illustrating an example, non-limiting embodiment of a guided wave communications system is shown. This diagram depicts an exemplary environment in which a guided wave communication system, such as the guided wave communication system presented in conjunction with FIG. 1, can be used.

To provide network connectivity to additional base station devices, a backhaul network that links the communication cells (e.g., microcells and macrocells) to network devices of a core network correspondingly expands. Similarly, to provide network connectivity to a distributed antenna system, an extended communication system that links base station devices and their distributed antennas is desirable. A guided wave communication system 1500 such as shown in FIG. 15 can be provided to enable alternative, increased or additional network connectivity and a waveguide coupling system can be provided to transmit and/or receive guided wave (e.g., surface wave) communications on a transmission medium such as a wire that operates as a single-wire transmission line (e.g., a utility line), and that can be used as a waveguide and/or that otherwise operates to guide the transmission of an electromagnetic wave.

The guided wave communication system 1500 can comprise a first instance of a distribution system 1550 that includes one or more base station devices (e.g., base station device 1504) that are communicably coupled to a central office 1501 and/or a macrocell site 1502. Base station device 1504 can be connected by a wired (e.g., fiber and/or cable), or by a wireless (e.g., microwave wireless) connection to the macrocell site 1502 and the central office 1501. A second instance of the distribution system 1560 can be used to provide wireless voice and data services to mobile device 1522 and to residential and/or commercial establishments 1542 (herein referred to as establishments 1542). System 1500 can have additional instances of the distribution systems 1550 and 1560 for providing voice and/or data services to mobile devices 1522-1524 and establishments 1542 as shown in FIG. 15.

Macrocells such as macrocell site 1502 can have dedicated connections to a mobile network and base station device 1504 or can share and/or otherwise use another connection. Central office 1501 can be used to distribute media content and/or provide internet service provider (ISP) services to mobile devices 1522-1524 and establishments 1542. The central office 1501 can receive media content from a constellation of satellites 1530 (one of which is shown in FIG. 15) or other sources of content, and distribute such content to mobile devices 1522-1524 and establishments 1542 via the first and second instances of the distribution system 1550 and 1560. The central office 1501 can also be communicatively coupled to the Internet 1503 for providing internet data services to mobile devices 1522-1524 and establishments 1542.

Base station device 1504 can be mounted on, or attached to, utility pole 1516. In other embodiments, base station device 1504 can be near transformers and/or other locations situated nearby a power line. Base station device 1504 can facilitate connectivity to a mobile network for mobile devices 1522 and 1524. Antennas 1512 and 1514, mounted on or near utility poles 1518 and 1520, respectively, can receive signals from base station device 1504 and transmit those signals to mobile devices 1522 and 1524 over a much wider area than if the antennas 1512 and 1514 were located at or near base station device 1504.

It is noted that FIG. 15 displays three utility poles, in each instance of the distribution systems 1550 and 1560, with one base station device, for purposes of simplicity. In other embodiments, utility pole 1516 can have more base station devices, and more utility poles with distributed antennas and/or tethered connections to establishments 1542.

A transmission device 1506, such as transmission device 101 or 102 presented in conjunction with FIG. 1, can transmit a signal from base station device 1504 to antennas 1512 and 1514 via utility or power line(s) that connect the utility poles 1516, 1518, and 1520. To transmit the signal, radio source and/or transmission device 1506 upconverts the signal (e.g., via frequency mixing) from base station device 1504 or otherwise converts the signal from the base station device 1504 to a microwave band signal and the transmission device 1506 launches a microwave band wave that propagates as a guided wave traveling along the utility line or other wire as described in previous embodiments. At utility pole 1518, another transmission device 1508 receives the guided wave (and optionally can amplify it as needed or desired or operate as a repeater to receive it and regenerate it) and sends it forward as a guided wave on the utility line or other wire. The transmission device 1508 can also extract a signal from the microwave band guided wave and shift it down in frequency or otherwise convert it to its original cellular band frequency (e.g., 1.9 GHz or other defined cellular frequency) or another cellular (or non-cellular) band frequency. An antenna 1512 can wireless transmit the downshifted signal to mobile device 1522. The process can be repeated by transmission device 1510, antenna 1514 and mobile device 1524, as necessary or desirable.

Transmissions from mobile devices 1522 and 1524 can also be received by antennas 1512 and 1514 respectively. The transmission devices 1508 and 1510 can upshift or otherwise convert the cellular band signals to microwave band and transmit the signals as guided wave (e.g., surface wave or other electromagnetic wave) transmissions over the power line(s) to base station device 1504.

Media content received by the central office 1501 can be supplied to the second instance of the distribution system 1560 via the base station device 1504 for distribution to mobile devices 1522 and establishments 1542. The transmission device 1510 can be tethered to the establishments 1542 by one or more wired connections or a wireless interface. The one or more wired connections may include without limitation, a power line, a coaxial cable, a fiber cable, a twisted pair cable, a guided wave transmission medium or other suitable wired mediums for distribution of media content and/or for providing internet services. In an example embodiment, the wired connections from the transmission device 1510 can be communicatively coupled to one or more very high bit rate digital subscriber line (VDSL) modems located at one or more corresponding service area interfaces (SAIs--not shown) or pedestals, each SAI or pedestal providing services to a portion of the establishments 1542. The VDSL modems can be used to selectively distribute media content and/or provide internet services to gateways (not shown) located in the establishments 1542. The SAIs or pedestals can also be communicatively coupled to the establishments 1542 over a wired medium such as a power line, a coaxial cable, a fiber cable, a twisted pair cable, a guided wave transmission medium or other suitable wired mediums. In other example embodiments, the transmission device 1510 can be communicatively coupled directly to establishments 1542 without intermediate interfaces such as the SAIs or pedestals.

In another example embodiment, system 1500 can employ diversity paths, where two or more utility lines or other wires are strung between the utility poles 1516, 1518, and 1520 (e.g., for example, two or more wires between poles 1516 and 1520) and redundant transmissions from base station/macrocell site 1502 are transmitted as guided waves down the surface of the utility lines or other wires. The utility lines or other wires can be either insulated or uninsulated, and depending on the environmental conditions that cause transmission losses, the coupling devices can selectively receive signals from the insulated or uninsulated utility lines or other wires. The selection can be based on measurements of the signal-to-noise ratio of the wires, or based on determined weather/environmental conditions (e.g., moisture detectors, weather forecasts, etc.). The use of diversity paths with system 1500 can enable alternate routing capabilities, load balancing, increased load handling, concurrent bi-directional or synchronous communications, spread spectrum communications, etc.

It is noted that the use of the transmission devices 1506, 1508, and 1510 in FIG. 15 are by way of example only, and that in other embodiments, other uses are possible. For instance, transmission devices can be used in a backhaul communication system, providing network connectivity to base station devices. Transmission devices 1506, 1508, and 1510 can be used in many circumstances where it is desirable to transmit guided wave communications over a wire, whether insulated or not insulated. Transmission devices 1506, 1508, and 1510 are improvements over other coupling devices due to no contact or limited physical and/or electrical contact with the wires that may carry high voltages. The transmission device can be located away from the wire (e.g., spaced apart from the wire) and/or located on the wire so long as it is not electrically in contact with the wire, as the dielectric acts as an insulator, allowing for cheap, easy, and/or less complex installation. However, as previously noted conducting or non-dielectric couplers can be employed, for example in configurations where the wires correspond to a telephone network, cable television network, broadband data service, fiber optic communications system or other network employing low voltages or having insulated transmission lines.

It is further noted, that while base station device 1504 and macrocell site 1502 are illustrated in an embodiment, other network configurations are likewise possible. For example, devices such as access points or other wireless gateways can be employed in a similar fashion to extend the reach of other networks such as a wireless local area network, a wireless personal area network or other wireless network that operates in accordance with a communication protocol such as a 802.11 protocol, WIMAX protocol, UltraWideband protocol, Bluetooth protocol, Zigbee protocol or other wireless protocol.

Referring now to FIGS. 16A & 16B, block diagrams illustrating an example, non-limiting embodiment of a system for managing a power grid communication system are shown. Considering FIG. 16A, a waveguide system 1602 is presented for use in a guided wave communications system, such as the system presented in conjunction with FIG. 15. The waveguide system 1602 can comprise sensors 1604, a power management system 1605, a transmission device 101 or 102 that includes at least one communication interface 205, transceiver 210 and coupler 220.

The waveguide system 1602 can be coupled to a power line 1610 for facilitating guided wave communications in accordance with embodiments described in the subject disclosure. In an example embodiment, the transmission device 101 or 102 includes coupler 220 for inducing electromagnetic waves on a surface of the power line 1610 that longitudinally propagate along the surface of the power line 1610 as described in the subject disclosure. The transmission device 101 or 102 can also serve as a repeater for retransmitting electromagnetic waves on the same power line 1610 or for routing electromagnetic waves between power lines 1610 as shown in FIGS. 12-13.

The transmission device 101 or 102 includes transceiver 210 configured to, for example, up-convert a signal operating at an original frequency range to electromagnetic waves operating at, exhibiting, or associated with a carrier frequency that propagate along a coupler to induce corresponding guided electromagnetic waves that propagate along a surface of the power line 1610. A carrier frequency can be represented by a center frequency having upper and lower cutoff frequencies that define the bandwidth of the electromagnetic waves. The power line 1610 can be a wire (e.g., single stranded or multi-stranded) having a conducting surface or insulated surface. The transceiver 210 can also receive signals from the coupler 220 and down-convert the electromagnetic waves operating at a carrier frequency to signals at their original frequency.

Signals received by the communications interface 205 of transmission device 101 or 102 for up-conversion can include without limitation signals supplied by a central office 1611 over a wired or wireless interface of the communications interface 205, a base station 1614 over a wired or wireless interface of the communications interface 205, wireless signals transmitted by mobile devices 1620 to the base station 1614 for delivery over the wired or wireless interface of the communications interface 205, signals supplied by in-building communication devices 1618 over the wired or wireless interface of the communications interface 205, and/or wireless signals supplied to the communications interface 205 by mobile devices 1612 roaming in a wireless communication range of the communications interface 205. In embodiments where the waveguide system 1602 functions as a repeater, such as shown in FIGS. 12-13, the communications interface 205 may or may not be included in the waveguide system 1602.

The electromagnetic waves propagating along the surface of the power line 1610 can be modulated and formatted to include packets or frames of data that include a data payload and further include networking information (such as header information for identifying one or more destination waveguide systems 1602). The networking information may be provided by the waveguide system 1602 or an originating device such as the central office 1611, the base station 1614, mobile devices 1620, or in-building devices 1618, or a combination thereof. Additionally, the modulated electromagnetic waves can include error correction data for mitigating signal disturbances. The networking information and error correction data can be used by a destination waveguide system 1602 for detecting transmissions directed to it, and for down-converting and processing with error correction data transmissions that include voice and/or data signals directed to recipient communication devices communicatively coupled to the destination waveguide system 1602.

Referring now to the sensors 1604 of the waveguide system 1602, the sensors 1604 can comprise one or more of a temperature sensor 1604a, a disturbance detection sensor 1604b, a loss of energy sensor 1604c, a noise sensor 1604d, a vibration sensor 1604e, an environmental (e.g., weather) sensor 1604f, and/or an image sensor 1604g. The temperature sensor 1604a can be used to measure ambient temperature, a temperature of the transmission device 101 or 102, a temperature of the power line 1610, temperature differentials (e.g., compared to a setpoint or baseline, between transmission device 101 or 102 and 1610, etc.), or any combination thereof. In one embodiment, temperature metrics can be collected and reported periodically to a network management system 1601 by way of the base station 1614.

The disturbance detection sensor 1604b can perform measurements on the power line 1610 to detect disturbances such as signal reflections, which may indicate a presence of a downstream disturbance that may impede the propagation of electromagnetic waves on the power line 1610. A signal reflection can represent a distortion resulting from, for example, an electromagnetic wave transmitted on the power line 1610 by the transmission device 101 or 102 that reflects in whole or in part back to the transmission device 101 or 102 from a disturbance in the power line 1610 located downstream from the transmission device 101 or 102.

Signal reflections can be caused by obstructions on the power line 1610. For example, a tree limb may cause electromagnetic wave reflections when the tree limb is lying on the power line 1610, or is in close proximity to the power line 1610 which may cause a corona discharge. Other obstructions that can cause electromagnetic wave reflections can include without limitation an object that has been entangled on the power line 1610 (e.g., clothing, a shoe wrapped around a power line 1610 with a shoe string, etc.), a corroded build-up on the power line 1610 or an ice build-up. Power grid components may also impede or obstruct with the propagation of electromagnetic waves on the surface of power lines 1610. Illustrations of power grid components that may cause signal reflections include without limitation a transformer and a joint for connecting spliced power lines. A sharp angle on the power line 1610 may also cause electromagnetic wave reflections.

The disturbance detection sensor 1604b can comprise a circuit to compare magnitudes of electromagnetic wave reflections to magnitudes of original electromagnetic waves transmitted by the transmission device 101 or 102 to determine how much a downstream disturbance in the power line 1610 attenuates transmissions. The disturbance detection sensor 1604b can further comprise a spectral analyzer circuit for performing spectral analysis on the reflected waves. The spectral data generated by the spectral analyzer circuit can be compared with spectral profiles via pattern recognition, an expert system, curve fitting, matched filtering or other artificial intelligence, classification or comparison technique to identify a type of disturbance based on, for example, the spectral profile that most closely matches the spectral data. The spectral profiles can be stored in a memory of the disturbance detection sensor 1604b or may be remotely accessible by the disturbance detection sensor 1604b. The profiles can comprise spectral data that models different disturbances that may be encountered on power lines 1610 to enable the disturbance detection sensor 1604b to identify disturbances locally. An identification of the disturbance if known can be reported to the network management system 1601 by way of the base station 1614. The disturbance detection sensor 1604b can also utilize the transmission device 101 or 102 to transmit electromagnetic waves as test signals to determine a roundtrip time for an electromagnetic wave reflection. The round trip time measured by the disturbance detection sensor 1604b can be used to calculate a distance traveled by the electromagnetic wave up to a point where the reflection takes place, which enables the disturbance detection sensor 1604b to calculate a distance from the transmission device 101 or 102 to the downstream disturbance on the power line 1610.

The distance calculated can be reported to the network management system 1601 by way of the base station 1614. In one embodiment, the location of the waveguide system 1602 on the power line 1610 may be known to the network management system 1601, which the network management system 1601 can use to determine a location of the disturbance on the power line 1610 based on a known topology of the power grid. In another embodiment, the waveguide system 1602 can provide its location to the network management system 1601 to assist in the determination of the location of the disturbance on the power line 1610. The location of the waveguide system 1602 can be obtained by the waveguide system 1602 from a pre-programmed location of the waveguide system 1602 stored in a memory of the waveguide system 1602, or the waveguide system 1602 can determine its location using a GPS receiver (not shown) included in the waveguide system 1602.

The power management system 1605 provides energy to the aforementioned components of the waveguide system 1602. The power management system 1605 can receive energy from solar cells, or from a transformer (not shown) coupled to the power line 1610, or by inductive coupling to the power line 1610 or another nearby power line. The power management system 1605 can also include a backup battery and/or a super capacitor or other capacitor circuit for providing the waveguide system 1602 with temporary power. The loss of energy sensor 1604c can be used to detect when the waveguide system 1602 has a loss of power condition and/or the occurrence of some other malfunction. For example, the loss of energy sensor 1604c can detect when there is a loss of power due to defective solar cells, an obstruction on the solar cells that causes them to malfunction, loss of power on the power line 1610, and/or when the backup power system malfunctions due to expiration of a backup battery, or a detectable defect in a super capacitor. When a malfunction and/or loss of power occurs, the loss of energy sensor 1604c can notify the network management system 1601 by way of the base station 1614.

The noise sensor 1604d can be used to measure noise on the power line 1610 that may adversely affect transmission of electromagnetic waves on the power line 1610. The noise sensor 1604d can sense unexpected electromagnetic interference, noise bursts, or other sources of disturbances that may interrupt reception of modulated electromagnetic waves on a surface of a power line 1610. A noise burst can be caused by, for example, a corona discharge, or other source of noise. The noise sensor 1604d can compare the measured noise to a noise profile obtained by the waveguide system 1602 from an internal database of noise profiles or from a remotely located database that stores noise profiles via pattern recognition, an expert system, curve fitting, matched filtering or other artificial intelligence, classification or comparison technique. From the comparison, the noise sensor 1604d may identify a noise source (e.g., corona discharge or otherwise) based on, for example, the noise profile that provides the closest match to the measured noise. The noise sensor 1604d can also detect how noise affects transmissions by measuring transmission metrics such as bit error rate, packet loss rate, jitter, packet retransmission requests, etc. The noise sensor 1604d can report to the network management system 1601 by way of the base station 1614 the identity of noise sources, their time of occurrence, and transmission metrics, among other things.

The vibration sensor 1604e can include accelerometers and/or gyroscopes to detect 2D or 3D vibrations on the power line 1610. The vibrations can be compared to vibration profiles that can be stored locally in the waveguide system 1602, or obtained by the waveguide system 1602 from a remote database via pattern recognition, an expert system, curve fitting, matched filtering or other artificial intelligence, classification or comparison technique. Vibration profiles can be used, for example, to distinguish fallen trees from wind gusts based on, for example, the vibration profile that provides the closest match to the measured vibrations. The results of this analysis can be reported by the vibration sensor 1604e to the network management system 1601 by way of the base station 1614.

The environmental sensor 1604f can include a barometer for measuring atmospheric pressure, ambient temperature (which can be provided by the temperature sensor 1604a), wind speed, humidity, wind direction, and rainfall, among other things. The environmental sensor 1604f can collect raw information and process this information by comparing it to environmental profiles that can be obtained from a memory of the waveguide system 1602 or a remote database to predict weather conditions before they arise via pattern recognition, an expert system, knowledge-based system or other artificial intelligence, classification or other weather modeling and prediction technique. The environmental sensor 1604f can report raw data as well as its analysis to the network management system 1601.

The image sensor 1604g can be a digital camera (e.g., a charged coupled device or CCD imager, infrared camera, etc.) for capturing images in a vicinity of the waveguide system 1602. The image sensor 1604g can include an electromechanical mechanism to control movement (e.g., actual position or focal points/zooms) of the camera for inspecting the power line 1610 from multiple perspectives (e.g., top surface, bottom surface, left surface, right surface and so on). Alternatively, the image sensor 1604g can be designed such that no electromechanical mechanism is needed in order to obtain the multiple perspectives. The collection and retrieval of imaging data generated by the image sensor 1604g can be controlled by the network management system 1601, or can be autonomously collected and reported by the image sensor 1604g to the network management system 1601.

Other sensors that may be suitable for collecting telemetry information associated with the waveguide system 1602 and/or the power lines 1610 for purposes of detecting, predicting and/or mitigating disturbances that can impede the propagation of electromagnetic wave transmissions on power lines 1610 (or any other form of a transmission medium of electromagnetic waves) may be utilized by the waveguide system 1602.

Referring now to FIG. 16B, block diagram 1650 illustrates an example, non-limiting embodiment of a system for managing a power grid 1653 and a communication system 1655 embedded therein or associated therewith in accordance with various aspects described herein. The communication system 1655 comprises a plurality of waveguide systems 1602 coupled to power lines 1610 of the power grid 1653. At least a portion of the waveguide systems 1602 used in the communication system 1655 can be in direct communication with a base station 1614 and/or the network management system 1601. Waveguide systems 1602 not directly connected to a base station 1614 or the network management system 1601 can engage in communication sessions with either a base station 1614 or the network management system 1601 by way of other downstream waveguide systems 1602 connected to a base station 1614 or the network management system 1601.

The network management system 1601 can be communicatively coupled to equipment of a utility company 1652 and equipment of a communications service provider 1654 for providing each entity, status information associated with the power grid 1653 and the communication system 1655, respectively. The network management system 1601, the equipment of the utility company 1652, and the communications service provider 1654 can access communication devices utilized by utility company personnel 1656 and/or communication devices utilized by communications service provider personnel 1658 for purposes of providing status information and/or for directing such personnel in the management of the power grid 1653 and/or communication system 1655.

FIG. 17A illustrates a flow diagram of an example, non-limiting embodiment of a method 1700 for detecting and mitigating disturbances occurring in a communication network of the systems of FIGS. 16A & 16B. Method 1700 can begin with step 1702 where a waveguide system 1602 transmits and receives messages embedded in, or forming part of, modulated electromagnetic waves or another type of electromagnetic waves traveling along a surface of a power line 1610. The messages can be voice messages, streaming video, and/or other data/information exchanged between communication devices communicatively coupled to the communication system 1655. At step 1704 the sensors 1604 of the waveguide system 1602 can collect sensing data. In an embodiment, the sensing data can be collected in step 1704 prior to, during, or after the transmission and/or receipt of messages in step 1702. At step 1706 the waveguide system 1602 (or the sensors 1604 themselves) can determine from the sensing data an actual or predicted occurrence of a disturbance in the communication system 1655 that can affect communications originating from (e.g., transmitted by) or received by the waveguide system 1602. The waveguide system 1602 (or the sensors 1604) can process temperature data, signal reflection data, loss of energy data, noise data, vibration data, environmental data, or any combination thereof to make this determination. The waveguide system 1602 (or the sensors 1604) may also detect, identify, estimate, or predict the source of the disturbance and/or its location in the communication system 1655. If a disturbance is neither detected/identified nor predicted/estimated at step 1708, the waveguide system 1602 can proceed to step 1702 where it continues to transmit and receive messages embedded in, or forming part of, modulated electromagnetic waves traveling along a surface of the power line 1610.

If at step 1708 a disturbance is detected/identified or predicted/estimated to occur, the waveguide system 1602 proceeds to step 1710 to determine if the disturbance adversely affects (or alternatively, is likely to adversely affect or the extent to which it may adversely affect) transmission or reception of messages in the communication system 1655. In one embodiment, a duration threshold and a frequency of occurrence threshold can be used at step 1710 to determine when a disturbance adversely affects communications in the communication system 1655. For illustration purposes only, assume a duration threshold is set to 500 ms, while a frequency of occurrence threshold is set to 5 disturbances occurring in an observation period of 10 sec. Thus, a disturbance having a duration greater than 500 ms will trigger the duration threshold. Additionally, any disturbance occurring more than 5 times in a 10 sec time interval will trigger the frequency of occurrence threshold.

In one embodiment, a disturbance may be considered to adversely affect signal integrity in the communication systems 1655 when the duration threshold alone is exceeded. In another embodiment, a disturbance may be considered as adversely affecting signal integrity in the communication systems 1655 when both the duration threshold and the frequency of occurrence threshold are exceeded. The latter embodiment is thus more conservative than the former embodiment for classifying disturbances that adversely affect signal integrity in the communication system 1655. It will be appreciated that many other algorithms and associated parameters and thresholds can be utilized for step 1710 in accordance with example embodiments.

Referring back to method 1700, if at step 1710 the disturbance detected at step 1708 does not meet the condition for adversely affected communications (e.g., neither exceeds the duration threshold nor the frequency of occurrence threshold), the waveguide system 1602 may proceed to step 1702 and continue processing messages. For instance, if the disturbance detected in step 1708 has a duration of 1 msec with a single occurrence in a 10 sec time period, then neither threshold will be exceeded. Consequently, such a disturbance may be considered as having a nominal effect on signal integrity in the communication system 1655 and thus would not be flagged as a disturbance requiring mitigation. Although not flagged, the occurrence of the disturbance, its time of occurrence, its frequency of occurrence, spectral data, and/or other useful information, may be reported to the network management system 1601 as telemetry data for monitoring purposes.

Referring back to step 1710, if on the other hand the disturbance satisfies the condition for adversely affected communications (e.g., exceeds either or both thresholds), the waveguide system 1602 can proceed to step 1712 and report the incident to the network management system 1601. The report can include raw sensing data collected by the sensors 1604, a description of the disturbance if known by the waveguide system 1602, a time of occurrence of the disturbance, a frequency of occurrence of the disturbance, a location associated with the disturbance, parameters readings such as bit error rate, packet loss rate, retransmission requests, jitter, latency and so on. If the disturbance is based on a prediction by one or more sensors of the waveguide system 1602, the report can include a type of disturbance expected, and if predictable, an expected time occurrence of the disturbance, and an expected frequency of occurrence of the predicted disturbance when the prediction is based on historical sensing data collected by the sensors 1604 of the waveguide system 1602.

At step 1714, the network management system 1601 can determine a mitigation, circumvention, or correction technique, which may include directing the waveguide system 1602 to reroute traffic to circumvent the disturbance if the location of the disturbance can be determined. In one embodiment, the waveguide coupling device 1402 detecting the disturbance may direct a repeater such as the one shown in FIGS. 13-14 to connect the waveguide system 1602 from a primary power line affected by the disturbance to a secondary power line to enable the waveguide system 1602 to reroute traffic to a different transmission medium and avoid the disturbance. In an embodiment where the waveguide system 1602 is configured as a repeater the waveguide system 1602 can itself perform the rerouting of traffic from the primary power line to the secondary power line. It is further noted that for bidirectional communications (e.g., full or half-duplex communications), the repeater can be configured to reroute traffic from the secondary power line back to the primary power line for processing by the waveguide system 1602.

In another embodiment, the waveguide system 1602 can redirect traffic by instructing a first repeater situated upstream of the disturbance and a second repeater situated downstream of the disturbance to redirect traffic from a primary power line temporarily to a secondary power line and back to the primary power line in a manner that avoids the disturbance. It is further noted that for bidirectional communications (e.g., full or half-duplex communications), repeaters can be configured to reroute traffic from the secondary power line back to the primary power line.

To avoid interrupting existing communication sessions occurring on a secondary power line, the network management system 1601 may direct the waveguide system 1602 to instruct repeater(s) to utilize unused time slot(s) and/or frequency band(s) of the secondary power line for redirecting data and/or voice traffic away from the primary power line to circumvent the disturbance.

At step 1716, while traffic is being rerouted to avoid the disturbance, the network management system 1601 can notify equipment of the utility company 1652 and/or equipment of the communications service provider 1654, which in turn may notify personnel of the utility company 1656 and/or personnel of the communications service provider 1658 of the detected disturbance and its location if known. Field personnel from either party can attend to resolving the disturbance at a determined location of the disturbance. Once the disturbance is removed or otherwise mitigated by personnel of the utility company and/or personnel of the communications service provider, such personnel can notify their respective companies and/or the network management system 1601 utilizing field equipment (e.g., a laptop computer, smartphone, etc.) communicatively coupled to network management system 1601, and/or equipment of the utility company and/or the communications service provider. The notification can include a description of how the disturbance was mitigated and any changes to the power lines 1610 that may change a topology of the communication system 1655.

Once the disturbance has been resolved (as determined in decision 1718), the network management system 1601 can direct the waveguide system 1602 at step 1720 to restore the previous routing configuration used by the waveguide system 1602 or route traffic according to a new routing configuration if the restoration strategy used to mitigate the disturbance resulted in a new network topology of the communication system 1655. In another embodiment, the waveguide system 1602 can be configured to monitor mitigation of the disturbance by transmitting test signals on the power line 1610 to determine when the disturbance has been removed. Once the waveguide system 1602 detects an absence of the disturbance it can autonomously restore its routing configuration without assistance by the network management system 1601 if it determines the network topology of the communication system 1655 has not changed, or it can utilize a new routing configuration that adapts to a detected new network topology.

FIG. 17B illustrates a flow diagram of an example, non-limiting embodiment of a method 1750 for detecting and mitigating disturbances occurring in a communication network of the system of FIGS. 16A and 16B. In one embodiment, method 1750 can begin with step 1752 where a network management system 1601 receives from equipment of the utility company 1652 or equipment of the communications service provider 1654 maintenance information associated with a maintenance schedule. The network management system 1601 can at step 1754 identify from the maintenance information, maintenance activities to be performed during the maintenance schedule. From these activities, the network management system 1601 can detect a disturbance resulting from the maintenance (e.g., scheduled replacement of a power line 1610, scheduled replacement of a waveguide system 1602 on the power line 1610, scheduled reconfiguration of power lines 1610 in the power grid 1653, etc.).

In another embodiment, the network management system 1601 can receive at step 1755 telemetry information from one or more waveguide systems 1602. The telemetry information can include among other things an identity of each waveguide system 1602 submitting the telemetry information, measurements taken by sensors 1604 of each waveguide system 1602, information relating to predicted, estimated, or actual disturbances detected by the sensors 1604 of each waveguide system 1602, location information associated with each waveguide system 1602, an estimated location of a detected disturbance, an identification of the disturbance, and so on. The network management system 1601 can determine from the telemetry information a type of disturbance that may be adverse to operations of the waveguide, transmission of the electromagnetic waves along the wire surface, or both. The network management system 1601 can also use telemetry information from multiple waveguide systems 1602 to isolate and identify the disturbance. Additionally, the network management system 1601 can request telemetry information from waveguide systems 1602 in a vicinity of an affected waveguide system 1602 to triangulate a location of the disturbance and/or validate an identification of the disturbance by receiving similar telemetry information from other waveguide systems 1602.

In yet another embodiment, the network management system 1601 can receive at step 1756 an unscheduled activity report from maintenance field personnel. Unscheduled maintenance may occur as result of field calls that are unplanned or as a result of unexpected field issues discovered during field calls or scheduled maintenance activities. The activity report can identify changes to a topology configuration of the power grid 1653 resulting from field personnel addressing discovered issues in the communication system 1655 and/or power grid 1653, changes to one or more waveguide systems 1602 (such as replacement or repair thereof), mitigation of disturbances performed if any, and so on.

At step 1758, the network management system 1601 can determine from reports received according to steps 1752 through 1756 if a disturbance will occur based on a maintenance schedule, or if a disturbance has occurred or is predicted to occur based on telemetry data, or if a disturbance has occurred due to an unplanned maintenance identified in a field activity report. From any of these reports, the network management system 1601 can determine whether a detected or predicted disturbance requires rerouting of traffic by the affected waveguide systems 1602 or other waveguide systems 1602 of the communication system 1655.

When a disturbance is detected or predicted at step 1758, the network management system 1601 can proceed to step 1760 where it can direct one or more waveguide systems 1602 to reroute traffic to circumvent the disturbance. When the disturbance is permanent due to a permanent topology change of the power grid 1653, the network management system 1601 can proceed to step 1770 and skip steps 1762, 1764, 1766, and 1772. At step 1770, the network management system 1601 can direct one or more waveguide systems 1602 to use a new routing configuration that adapts to the new topology. However, when the disturbance has been detected from telemetry information supplied by one or more waveguide systems 1602, the network management system 1601 can notify maintenance personnel of the utility company 1656 or the communications service provider 1658 of a location of the disturbance, a type of disturbance if known, and related information that may be helpful to such personnel to mitigate the disturbance. When a disturbance is expected due to maintenance activities, the network management system 1601 can direct one or more waveguide systems 1602 to reconfigure traffic routes at a given schedule (consistent with the maintenance schedule) to avoid disturbances caused by the maintenance activities during the maintenance schedule.

Returning back to step 1760 and upon its completion, the process can continue with step 1762. At step 1762, the network management system 1601 can monitor when the disturbance(s) have been mitigated by field personnel. Mitigation of a disturbance can be detected at step 1762 by analyzing field reports submitted to the network management system 1601 by field personnel over a communications network (e.g., cellular communication system) utilizing field equipment (e.g., a laptop computer or handheld computer/device). If field personnel have reported that a disturbance has been mitigated, the network management system 1601 can proceed to step 1764 to determine from the field report whether a topology change was required to mitigate the disturbance. A topology change can include rerouting a power line 1610, reconfiguring a waveguide system 1602 to utilize a different power line 1610, otherwise utilizing an alternative link to bypass the disturbance and so on. If a topology change has taken place, the network management system 1601 can direct at step 1770 one or more waveguide systems 1602 to use a new routing configuration that adapts to the new topology.

If, however, a topology change has not been reported by field personnel, the network management system 1601 can proceed to step 1766 where it can direct one or more waveguide systems 1602 to send test signals to test a routing configuration that had been used prior to the detected disturbance(s). Test signals can be sent to affected waveguide systems 1602 in a vicinity of the disturbance. The test signals can be used to determine if signal disturbances (e.g., electromagnetic wave reflections) are detected by any of the waveguide systems 1602. If the test signals confirm that a prior routing configuration is no longer subject to previously detected disturbance(s), then the network management system 1601 can at step 1772 direct the affected waveguide systems 1602 to restore a previous routing configuration. If, however, test signals analyzed by one or more waveguide coupling device 1402 and reported to the network management system 1601 indicate that the disturbance(s) or new disturbance(s) are present, then the network management system 1601 will proceed to step 1768 and report this information to field personnel to further address field issues. The network management system 1601 can in this situation continue to monitor mitigation of the disturbance(s) at step 1762.

In the aforementioned embodiments, the waveguide systems 1602 can be configured to be self-adapting to changes in the power grid 1653 and/or to mitigation of disturbances. That is, one or more affected waveguide systems 1602 can be configured to self-monitor mitigation of disturbances and reconfigure traffic routes without requiring instructions to be sent to them by the network management system 1601. In this embodiment, the one or more waveguide systems 1602 that are self-configurable can inform the network management system 1601 of its routing choices so that the network management system 1601 can maintain a macro-level view of the communication topology of the communication system 1655.

While for purposes of simplicity of explanation, the respective processes are shown and described as a series of blocks in FIGS. 17A and 17B, respectively, it is to be understood and appreciated that the claimed subject matter is not limited by the order of the blocks, as some blocks may occur in different orders and/or concurrently with other blocks from what is depicted and described herein. Moreover, not all illustrated blocks may be required to implement the methods described herein.

Turning now to FIG. 18A, a block diagram illustrating an example, non-limiting embodiment of a transmission medium 1800 for propagating guided electromagnetic waves is shown. In particular, a further example of transmission medium 125 presented in conjunction with FIG. 1 is presented. In an embodiment, the transmission medium 1800 can comprise a first dielectric material 1802 and a second dielectric material 1804 disposed thereon. In an embodiment, the first dielectric material 1802 can comprise a dielectric core (referred to herein as dielectric core 1802) and the second dielectric material 1804 can comprise a cladding or shell such as a dielectric foam that surrounds in whole or in part the dielectric core (referred to herein as dielectric foam 1804). In an embodiment, the dielectric core 1802 and dielectric foam 1804 can be coaxially aligned to each other (although not necessary). In an embodiment, the combination of the dielectric core 1802 and the dielectric foam 1804 can be flexed or bent at least by 45 degrees without damaging the materials of the dielectric core 1802 and the dielectric foam 1804. In an embodiment, an outer surface of the dielectric foam 1804 can be further surrounded in whole or in part by a third dielectric material 1806, which can serve as an outer jacket (referred to herein as jacket 1806). The jacket 1806 can prevent exposure of the dielectric core 1802 and the dielectric foam 1804 to an environment that can adversely affect the propagation of electromagnetic waves (e.g., water, soil, etc.).

The dielectric core 1802 can comprise, for example, a high density polyethylene material, a high density polyurethane material, or other suitable dielectric material(s). Any of these materials can be doped with a rutile suspension or other dielectric material with a high dielectric constant to increase the dielectric constant. In particular, larger values of dielectric constant d, can allow smaller values of core radius r, to satisfy the inequality below:

.times..pi..times..times..lamda.< ##EQU00001## where .lamda. represents the wavelength of the guided electromagnetic waves. The use of high dielectric constant materials, doping and/or suspensions can support more reasonable core sizes at lower frequencies.

The dielectric foam 1804 can comprise, for example, a cellular plastic material such an expanded polyethylene material, or other suitable dielectric material(s). The jacket 1806 can comprise, for example, a polyethylene material or equivalent. In an embodiment, the dielectric constant of the dielectric foam 1804 can be (or substantially) lower than the dielectric constant of the dielectric core 1802. For example, the dielectric constant of the dielectric core 1802 can be approximately 2.3 while the dielectric constant of the dielectric foam 1804 can be approximately 1.15 (slightly higher than the dielectric constant of air).

The dielectric core 1802 can be used for receiving signals in the form of electromagnetic waves from a launcher or other coupling device described herein which can be configured to launch guided electromagnetic waves on the transmission medium 1800. In one embodiment, the transmission medium 1800 can be coupled to a hollow waveguide 1808 structured as, for example, a circular waveguide 1809, which can receive electromagnetic waves from a radiating device such as a stub antenna (not shown). The hollow waveguide 1808 can in turn induce guided electromagnetic waves in the dielectric core 1802. In this configuration, the guided electromagnetic waves are guided by or bound to the dielectric core 1802 and propagate longitudinally along the dielectric core 1802. By adjusting electronics of the launcher, an operating frequency of the electromagnetic waves can be chosen such that a field intensity profile 1810 of the guided electromagnetic waves extends nominally (or not at all) outside of the jacket 1806.

By maintaining most (if not all) of the field strength of the guided electromagnetic waves within portions of the dielectric core 1802, the dielectric foam 1804 and/or the jacket 1806, the transmission medium 1800 can be used in hostile environments without adversely affecting the propagation of the electromagnetic waves propagating therein. For example, the transmission medium 1800 can be buried in soil with no (or nearly no) adverse effect to the guided electromagnetic waves propagating in the transmission medium 1800. Similarly, the transmission medium 1800 can be exposed to water (e.g., rain or placed underwater) with no (or nearly no) adverse effect to the guided electromagnetic waves propagating in the transmission medium 1800. In an embodiment, the propagation loss of guided electromagnetic waves in the foregoing embodiments can be 1 to 2 dB per meter or better at an operating frequency of 60 GHz. Depending on the operating frequency of the guided electromagnetic waves and/or the materials used for the transmission medium 1800 other propagation losses may be possible. Additionally, depending on the materials used to construct the transmission medium 1800, the transmission medium 1800 can in some embodiments be flexed laterally with no (or nearly no) adverse effect to the guided electromagnetic waves propagating through the dielectric core 1802 and the dielectric foam 1804.

FIG. 18B depicts a transmission medium 1820 that differs from the transmission medium 1800 of FIG. 18A, yet provides a further example of the transmission medium 125 presented in conjunction with FIG. 1. The transmission medium 1820 shows similar reference numerals for similar elements of the transmission medium 1800 of FIG. 18A. In contrast to the transmission medium 1800, the transmission medium 1820 comprises a conductive core 1822 having an insulation layer 1823 surrounding the conductive core 1822 in whole or in part. The combination of the insulation layer 1823 and the conductive core 1822 will be referred to herein as an insulated conductor 1825. In the illustration of FIG. 18B, the insulation layer 1823 is covered in whole or in part by a dielectric foam 1804 and jacket 1806, which can be constructed from the materials previously described. In an embodiment, the insulation layer 1823 can comprise a dielectric material, such as polyethylene, having a higher dielectric constant than the dielectric foam 1804 (e.g., 2.3 and 1.15, respectively). In an embodiment, the components of the transmission medium 1820 can be coaxially aligned (although not necessary). In an embodiment, a hollow waveguide 1808 having metal sides 1809, which can be separated from the insulation layer 1823 (although not necessary) can be used to launch guided electromagnetic waves that substantially propagate on an outer surface of the insulation layer 1823, however other coupling devices as described herein can likewise be employed. In an embodiment, the guided electromagnetic waves can be sufficiently guided by or bound by the insulation layer 1823 to guide the electromagnetic waves longitudinally along the insulation layer 1823. By adjusting operational parameters of the launcher, an operating frequency of the guided electromagnetic waves launched by the hollow waveguide 1808 can generate an electric field intensity profile 1824 that results in the guided electromagnetic waves being substantially confined within the dielectric foam 1804 thereby preventing the guided electromagnetic waves from being exposed to an environment (e.g., water, soil, etc.) that adversely affects propagation of the guided electromagnetic waves via the transmission medium 1820.

FIG. 18C depicts a transmission medium 1830 that differs from the transmission mediums 1800 and 1820 of FIGS. 18A and 18B, yet provides a further example of the transmission medium 125 presented in conjunction with FIG. 1. The transmission medium 1830 shows similar reference numerals for similar elements of the transmission mediums 1800 and 1820 of FIGS. 18A and 18B, respectively. In contrast to the transmission mediums 1800 and 1820, the transmission medium 1830 comprises a bare (or uninsulated) conductor 1832 surrounded in whole or in part by the dielectric foam 1804 and the jacket 1806, which can be constructed from the materials previously described. In an embodiment, the components of the transmission medium 1830 can be coaxially aligned (although not necessary). In an embodiment, a hollow waveguide 1808 having metal sides 1809 coupled to the bare conductor 1832 can be used to launch guided electromagnetic waves that substantially propagate on an outer surface of the bare conductor 1832, however other coupling devices described herein can likewise be employed. In an embodiment, the guided electromagnetic waves can be sufficiently guided by or bound by the bare conductor 1832 to guide the guided electromagnetic waves longitudinally along the bare conductor 1832. By adjusting operational parameters of the launcher, an operating frequency of the guided electromagnetic waves launched by the hollow waveguide 1808 can generate an electric field intensity profile 1834 that results in the guided electromagnetic waves being substantially confined within the dielectric foam 1804 thereby preventing the guided electromagnetic waves from being exposed to an environment (e.g., water, soil, etc.) that adversely affects propagation of the electromagnetic waves via the transmission medium 1830.

It should be noted that the hollow launcher 1808 used with the transmission mediums 1800, 1820 and 1830 of FIGS. 18A, 18B and 18C, respectively, can be replaced with other launchers or coupling devices. Additionally, the propagation mode(s) of the electromagnetic waves for any of the foregoing embodiments can be fundamental mode(s), a non-fundamental (or asymmetric) mode(s), or combinations thereof.

FIG. 18D is a block diagram illustrating an example, non-limiting embodiment of bundled transmission media 1836 in accordance with various aspects described herein. The bundled transmission media 1836 can comprise a plurality of cables 1838 held in place by a flexible sleeve 1839. The plurality of cables 1838 can comprise multiple instances of cable 1800 of FIG. 18A, multiple instances of cable 1820 of FIG. 18B, multiple instances of cable 1830 of FIG. 18C, or any combinations thereof. The sleeve 1839 can comprise a dielectric material that prevents soil, water or other external materials from making contact with the plurality of cables 1838. In an embodiment, a plurality of launchers, each utilizing a transceiver similar to the one depicted in FIG. 10A or other coupling devices described herein, can be adapted to selectively induce a guided electromagnetic wave in each cable, each guided electromagnetic wave conveys different data (e.g., voice, video, messaging, content, etc.). In an embodiment, by adjusting operational parameters of each launcher or other coupling device, the electric field intensity profile of each guided electromagnetic wave can be fully or substantially confined within layers of a corresponding cable 1838 to reduce cross-talk between cables 1838.

In situations where the electric field intensity profile of each guided electromagnetic wave is not fully or substantially confined within a corresponding cable 1838, cross-talk of electromagnetic signals can occur between cables 1838 as illustrated by signal plots associated with two cables depicted in FIG. 18E. The plots in FIG. 18E show that when a guided electromagnetic wave is induced on a first cable, the emitted electric and magnetic fields of the first cable can induce signals on the second cable, which results in cross-talk. Several mitigation options can be used to reduce cross-talk between the cables 1838 of FIG. 18D. In an embodiment, an absorption material 1840 that can absorb electromagnetic fields, such as carbon, can be applied to the cables 1838 as shown in FIG. 18F to polarize each guided electromagnetic wave at various polarization states to reduce cross-talk between cables 1838. In another embodiment (not shown), carbon beads can be added to gaps between the cables 1838 to reduce cross-talk.

In yet another embodiment (not shown), a diameter of cable 1838 can be configured differently to vary a speed of propagation of guided electromagnetic waves between the cables 1838 in order to reduce cross-talk between cables 1838. In an embodiment (not shown), a shape of each cable 1838 can be made asymmetric (e.g., elliptical) to direct the guided electromagnetic fields of each cable 1838 away from each other to reduce cross-talk. In an embodiment (not shown), a filler material such as dielectric foam can be added between cables 1838 to sufficiently separate the cables 1838 to reduce cross-talk therebetween. In an embodiment (not shown), longitudinal carbon strips or swirls can be applied to on an outer surface of the jacket 1806 of each cable 1838 to reduce radiation of guided electromagnetic waves outside of the jacket 1806 and thereby reduce cross-talk between cables 1838. In yet another embodiment, each launcher can be configured to launch a guided electromagnetic wave having a different frequency, modulation, wave propagation mode, such as an orthogonal frequency, modulation or mode, to reduce cross-talk between the cables 1838.

In yet another embodiment (not shown), pairs of cables 1838 can be twisted in a helix to reduce cross-talk between the pairs and other cables 1838 in a vicinity of the pairs. In some embodiments, certain cables 1838 can be twisted while other cables 1838 are not twisted to reduce cross-talk between the cables 1838. Additionally, each twisted pair cable 1838 can have different pitches (i.e., different twist rates, such as twists per meter) to further reduce cross-talk between the pairs and other cables 1838 in a vicinity of the pairs. In another embodiment (not shown), launchers or other coupling devices can be configured to induce guided electromagnetic waves in the cables 1838 having electromagnetic fields that extend beyond the jacket 1806 into gaps between the cables to reduce cross-talk between the cables 1838. It is submitted that any one of the foregoing embodiments for mitigating cross-talk between cables 1838 can be combined to further reduce cross-talk therebetween.

For illustration purposes only, the transmission mediums 1800, 1820, 1830 and 1836 will be referred to herein as a cable 1850 with an understanding that cable 1850 can represent any one of the transmission mediums described in the subject disclosure, or a bundling of multiple instances thereof. For illustration purposes only, the dielectric core 1802, insulated conductor 1825, or bare conductor 1832 of the transmission mediums 1800, 1820, 1830 and 1836, respectively, will be referred to herein as transmission core 1852 with an understanding that cable 1850 can utilize the dielectric core 1802, insulated conductor 1825, or bare conductor 1832 of transmission mediums 1800, 1820, 1830, and/or 1836, respectively.

Turning now to FIGS. 18G and 18H, block diagrams illustrating example, non-limiting embodiments of connector configurations that can be used by cable 1850 are shown. In one embodiment, cable 1850 can be configured with a female connection arrangement or a male connection arrangement as depicted in FIG. 18G. The male configuration on the right of FIG. 18G can be accomplished by stripping the dielectric foam 1804 (and jacket 1806 if there is one) to expose a portion of the transmission core 1852. The female configuration on the left of FIG. 18G can be accomplished by removing a portion of the transmission core 1852, while maintaining the dielectric foam 1804 (and jacket 1806 if there is one).

The cables 1850 having male and female connector arrangements can be mated together. A sleeve with an adhesive inner lining or a shrink wrap material (not shown) can be applied to an area of a joint between cables 1850 to maintain the joint in a fixed position and prevent exposure (e.g., to water, soil, etc.). When the cables 1850 are mated, the transmission core 1852 of one cable will be in close proximity to the transmission core 1852 of the other cable. Guided electromagnetic waves propagating by way of either the transmission core 1852 of cables 1850 traveling from either direction can cross over between the disjoint the transmission cores 1852 whether or not the transmission cores 1852 touch, whether or not the transmission cores 1852 are coaxially aligned, and/or whether or not there is a gap between the transmission cores 1852.

In another embodiment, a splicing device 1860 having female connector arrangements at both ends can be used to mate cables 1850 having male connector arrangements as shown in FIG. 18H. In an alternative embodiment not shown in FIG. 18H, the splicing device 1860 can be adapted to have male connector arrangements at both ends which can be mated to cables 1850 having female connector arrangements. In another embodiment not shown in FIG. 18H, the splicing device 1860 can be adapted to have a male connector arrangement and a female connector arrangement at opposite ends which can be mated to cables 1850 having female and male connector arrangements, respectively.

The foregoing embodiments for connecting cables illustrated in FIGS. 18I-18J can be applied to each single instance of cable 1838 of bundled transmission media 1836.

Turning now to FIG. 18I, a block diagram illustrating example, non-limiting embodiments of transmission mediums 1800', 1800'', 1800''' and 1800'''' for propagating guided electromagnetic waves is shown. In an embodiment, a transmission medium 1800' can include a core 1801, and a dielectric foam 1804' divided into sections and covered by a jacket 1806 as shown in FIG. 18I. The core 1801 can be represented by the dielectric core 1802 of FIG. 18A, the insulated conductor 1825 of FIG. 18B, or the bare conductor 1832 of FIG. 18C. Each section of dielectric foam 1804' can be separated by a gap (e.g., air, gas, vacuum, or a substance with a low dielectric constant). In an embodiment, the gap separations between the sections of dielectric foam 1804' can be quasi-random as shown in FIG. 18I, which can be helpful in reducing reflections of electromagnetic waves occurring at each section of dielectric foam 1804' as they propagate longitudinally along the core 1801. The sections of the dielectric foam 1804' can be constructed, for example, as washers made of a dielectric foam having an inner opening for supporting the core 1801 in a fixed position. For illustration purposes only, the washers will be referred to herein as washers 1804'. In an embodiment, the inner opening of each washer 1804' can be coaxially aligned with an axis of the core 1801. In another embodiment, the inner opening of each washer 1804' can be offset from the axis of the core 1801. In another embodiment (not shown), each washer 1804' can have a variable longitudinal thickness as shown by differences in thickness of the washers 1804'.

In an alternative embodiment, a transmission medium 1800'' can include a core 1801, and a strip of dielectric foam 1804'' wrapped around the core in a helix covered by a jacket 1806 as shown in FIG. 18I. Although it may not be apparent from the drawing shown in FIG. 18I, in an embodiment the strip of dielectric foam 1804'' can be twisted around the core 1801 with variable pitches (i.e., different twist rates) for different sections of the strip of dielectric foam 1804''. Utilizing variable pitches can help reduce reflections or other disturbances of the electromagnetic waves occurring between areas of the core 1801 not covered by the strip of dielectric foam 1804''. It is further noted that the thickness (diameter) of the strip of dielectric foam 1804'' can be substantially larger (e.g., 2 or more times larger) than diameter of the core 1801 shown in FIG. 18I.

In an alternative embodiment, a transmission medium 1800''' (shown in a cross-sectional view) can include a non-circular core 1801' (that is, a core having a non-circular cross section) covered by a dielectric foam 1804 and jacket 1806. In an embodiment, the non-circular core 1801' can have an elliptical structure as shown in FIG. 18I, or other suitable non-circular structure. In another embodiment, the non-circular core 1801' can have an asymmetrical cross-sectional structure. In yet another embodiment, the non-circular dielectric core 1801' can have a symmetrical cross-sectional structure. A non-circular core 1801' can be used to polarize the fields of electromagnetic waves induced on the non-circular core 1801'. The structure of the non-circular core 1801' can help preserve the polarization of the electromagnetic waves as they propagate along the non-circular core 1801'.

In an alternative embodiment, a transmission medium 1800'''' (shown in a cross-sectional view) can include multiple cores 1801'' (only two cores are shown but more are possible). The multiple cores 1801'' can be covered by a dielectric foam 1804 and jacket 1806. The multiple cores 1801'' can have symmetrical cross-sectional structures, asymmetrical cross-sectional structures, or combinations thereof. The multiple cores 1801'' can be used to polarize the fields of electromagnetic waves induced on the multiple cores 1801''. The structure of the multiple cores 1801' can preserve the polarization of the guided electromagnetic waves as they propagate along the multiple cores 1801''.

Turning now to FIG. 18J is a block diagram illustrating example, non-limiting embodiments of bundled transmission media to mitigate cross-talk in accordance with various aspects described herein. In an embodiment, a bundled transmission medium 1836' can include variable core structures 1803. By varying the structures of cores 1803, fields of guided electromagnetic waves induced in each of the cores of transmission medium 1836' may differ sufficiently to reduce cross-talk between cables 1838. In another embodiment, a bundled transmission media 1836'' can include a variable number of cores 1803' per cable 1838. By varying the number of cores 1803' per cable 1838, fields of guided electromagnetic waves induced in the one or more cores of transmission medium 1836'' may differ sufficiently to reduce cross-talk between cables 1838. In another embodiment, the cores 1803 or 1803' can be of different materials. For example, the cores 1803 or 1803' can be a dielectric core 1802, an insulated conductor core 1825, a bare conductor core 1832, or any combinations thereof.

It is noted that the embodiments illustrated in FIGS. 18A-18D and 18F can be modified by and/or combined with any of the embodiments of FIGS. 18I-18J. It is further noted that one or more of the embodiments illustrated in FIGS. 18I-18J can be combined (e.g., using sectionalized dielectric foam 1804' or a helix strip of dielectric foam 1804'' with cores 1801', 1801'', 1803 or 1803'). In some embodiments guided electromagnetic waves propagating in the transmission mediums 1800', 1800'', 1800''', and/or 1800'''' of FIG. 18I may experience less propagation losses than guided electromagnetic waves propagating in the transmission mediums 1800, 1820 and 1830 of FIGS. 18A-18C. Additionally, the embodiments illustrated in FIGS. 18I-18J can be adapted to use the connectivity embodiments illustrated in FIGS. 18G-18H.

Turning now to FIG. 18K, a block diagram illustrating an example, non-limiting embodiment of exposed tapered stubs from the bundled transmission media 1836 for use as antennas 1855 is shown. Each antenna 1855 can serve as a directional antenna for radiating wireless signals directed to wireless communication devices or for inducing electromagnetic wave propagation on a surface of a transmission medium (e.g., a power line). In an embodiment, the wireless signals radiated by the antennas 1855 can be beam steered by adapting the phase and/or other characteristics of the wireless signals generated by each antenna 1855. In an embodiment, the antennas 1855 can individually be placed in a pie-pan antenna assembly for directing wireless signals in various directions.

It is further noted that the terms "core", "cladding", "shell", and "foam" as utilized in the subject disclosure can comprise any types of materials (or combinations of materials) that enable electromagnetic waves to remain bound to the core while propagating longitudinally along the core. For example, a strip of dielectric foam 1804'' described earlier can be replaced with a strip of an ordinary dielectric material (e.g., polyethylene) for wrapping around the dielectric core 1802 (referred to herein for illustration purposes only as a "wrap"). In this configuration an average density of the wrap can be small as a result of air space between sections of the wrap. Consequently, an effective dielectric constant of the wrap can be less than the dielectric constant of the dielectric core 1802, thereby enabling guided electromagnetic waves to remain bound to the core. Accordingly, any of the embodiments of the subject disclosure relating to materials used for core(s) and wrappings about the core(s) can be structurally adapted and/or modified with other dielectric materials that achieve the result of maintaining electromagnetic waves bound to the core(s) while they propagate along the core(s). Additionally, a core in whole or in part as described in any of the embodiments of the subject disclosure can comprise an opaque material (e.g., polyethylene). Accordingly, electromagnetic waves guided and bound to the core will have a non-optical frequency range (e.g., less than the lowest frequency of visible light).

Turning now to FIGS. 19A and 19B, block diagrams illustrating example, non-limiting embodiments of the cable 1850 of FIG. 18A used for inducing guided electromagnetic waves on power lines supported by utility poles. In one embodiment, as depicted in FIG. 19A, a cable 1850 can be coupled at one end to a microwave apparatus that launches guided electromagnetic waves within one or more inner layers of cable 1850 utilizing, for example, the hollow waveguide 1808 shown in FIGS. 18A-18C. The microwave apparatus can utilize a microwave transceiver such as shown in FIG. 10A for transmitting or receiving signals from cable 1850. The guided electromagnetic waves induced in the one or more inner layers of cable 1850 can propagate to an exposed stub of the cable 1850 located inside a horn antenna (shown as a dotted line in FIG. 19A) for radiating the electromagnetic waves via the horn antenna. The radiated signals from the horn antenna in turn can induce guided electromagnetic waves that propagate longitudinally on a medium voltage (MV) power line. In one embodiment, the microwave apparatus can receive AC power from a low voltage (e.g., 220V) power line. Alternatively, the horn antenna can be replaced with a stub antenna as shown in FIG. 19B to induce guided electromagnetic waves that propagate longitudinally on the MV power line or to transmit wireless signals to other antenna system(s).

In alternate embodiments, first and second cables 1850A' and 1850B' can be coupled to the microwave apparatus and to a transformer 1952, respectively, as shown in FIGS. 19A and 19B. The first and second cables 1850A' and 1850B' can be represented by, for example, cable 1820 or cable 1830 of FIGS. 18B and 18C, respectively, each having a conductive core. A first end of the conductive core of the first cable 1850A' can be coupled to the microwave apparatus for propagating guided electromagnetic waves launched therein. A second end of the conductive core of the first cable 1850A' can be coupled to a first end of a conductive coil of the transformer 1952 for receiving the guided electromagnetic waves propagating in the first cable 1850A' and for supplying signals associated therewith to a first end of a second cable 1850B' by way of a second end of the conductive coil of the transformer 1952. A second end of the second cable 1850B' can be coupled to the horn antenna of FIG. 19A or can be exposed as a stub antenna of FIG. 19B for inducing guided electromagnetic waves that propagate longitudinally on the MV power line.

In an embodiment where cable 1850, 1850A' and 1850B' each comprise multiple instances of transmission mediums 1800, 1820, and/or 1830, a poly-rod structure of antennas 1855 can be formed such as shown in FIG. 18K. Each antenna 1855 can be coupled, for example, to a horn antenna assembly as shown in FIG. 19A or a pie-pan antenna assembly (not shown) for radiating multiple wireless signals. Alternatively, the antennas 1855 can be used as stub antennas in FIG. 19B. The microwave apparatus of FIGS. 19A-19B can be configured to adjust the guided electromagnetic waves to beam steer the wireless signals emitted by the antennas 1855. One or more of the antennas 1855 can also be used for inducing guided electromagnetic waves on a power line.

Turning now to FIG. 20A, a block diagram 2000 is shown illustrating an example, non-limiting embodiment of a connector in accordance with various aspects described herein. In particular, a connector 2002 is presented for use in conjunction with segments of transmission medium 2010-1 and 2010-2, such as transmission medium 1800 presented in conjunction with FIG. 18A or other conductor-less coaxial cable that propagates guided electromagnetic waves via a dielectric core 2016 surrounded by a dielectric cladding 2014 and an insulating jacket 2015.

The connector 2002 includes two open ports 2015-1 and 2015-2 that are configured to mate with the segments of transmission media 2010-1 and 2010-2 as shown. When the segments of transmission media 2010-1 and 2010-2 are connected via the connector 2002 by placing the ends of their respective dielectric cores within the open ports, the connector 2002 facilitates the propagation of guided electromagnetic waves from one segment of transmission medium 2010-1 to another 2010-2 and vice versa. In particular, the first port 2015-1 is configured to receive electromagnetic waves guided by a dielectric core 2016 of transmission medium 2010-1. A waveguide 2006 is configured to guide the electromagnetic waves from the port 2015-1 to the port 2015-2, which transmits the electromagnetic waves to the dielectric core 2016 of the transmission medium 2010-2. The port 2015-1 can be configured non-colinearly with the port 2015-2 in accordance with an angle of connection .theta..sub.1 as shown. As noted in conjunction with FIG. 18A, while the transmission medium 2010 may be able to flex to a certain degree without damage, connector 2002 not only allows two segments of transmission media 2010-1 and 2010-2 to be joined for bidirectional communication via guided electromagnetic waves, it also allows a more abrupt change of direction.

It should be noted that while an angle .theta..sub.1 of approximately 135 degrees is shown, other angles in the range of 0.ltoreq..theta..sub.1.ltoreq.180 degrees could likewise be implemented in a similar fashion. Also, while the connector 2002 is shown as making female connections at the ports 2015-1 and 2015-2, male connections and/or a combination of male and female connections or other connection types could likewise be employed. In addition, while not expressly shown, the ports 2015-1 and 2015-2 could include one or more clips, a screw type mechanism, a bayonet style mechanism or other mechanism that engageably mates with a reciprocal mechanism on the segments of transmission medium 2010-1 and 2010-2 to secure each connection.

In the example shown, the waveguide 2006 is constructed of a dielectric material that is surrounded in the portions shown by a dielectric foam 2004 that forms a dielectric cladding that is covered in the portions shown by insulating jacket or other cover 2005. While the connector 2002 is shown in longitudinal cross section, the axial cross section of the connector 2002 can be circular, elliptic, polygonal or otherwise conform to the cross-sectional shape of the segments of transmission media 2010-1 and 2010-2.

The waveguide 2006 can comprise, for example, a high density dielectric material such as a high density polyethylene material, a high density polyurethane material, or other suitable dielectric material(s). The dielectric foam 2004 can comprise, for example, a cellular plastic material such an expanded polyethylene material, or other suitable dielectric material(s). The insulating jacket 2005 can comprise, for example, a polyethylene material or equivalent. In an embodiment, the dielectric constant of the dielectric foam 2004 can be lower (including substantially lower) than the dielectric constant of the waveguide 2006. For example, the dielectric constant of the waveguide 2006 can be approximately 2.3 while the dielectric constant of the dielectric foam 2004 can be approximately 1.15 (slightly higher than the dielectric constant of air).

In the example shown, the waveguide 2006 includes a bulbous portion 2008 of wider dimension. This bulbous portion 2008 mitigates extraneous and/or undesirable radiation as the electromagnetic waves are guided about the angle of connection .theta..sub.1. While the bulbous portion 2008 is shown of a spherical shape, other shapes could likewise be employed.

Turning now to FIG. 20B, a block diagram 2020 is shown illustrating an example, non-limiting embodiment of a connector in accordance with various aspects described herein. In particular, a connector 2022 is shown that includes many similar features of connector 2002 that are referred to by common reference numerals. In this configuration, the waveguide includes a ball and socket joint 2024. In particular, the ball and socket joint can be constructed of high density dielectric and provide additional flexibility making the angle of connection .theta..sub.2 somewhat adjustable. In the example shown, the portions of dielectric cladding around the ball and socket joint are replaced by an air gap 2026 and the insulating jacket is this region 2028 is configured in a flexible accordion shape to help facilitate the angular adjustability of the connector.

Turning now to FIG. 20C, a block diagram 2040 is shown illustrating an example, non-limiting embodiment of a connector in accordance with various aspects described herein. In particular, a connector 2042 is shown that includes many similar features of connector 2002 that are referred to by common reference numerals. In this configuration, the waveguide 2046 comprises a hollow metallic shell 2044 that guides the electromagnetic waves between the dielectric cores 2016 at an angle of connection .theta..sub.3. The waveguide 2046 includes a face 2045 that reflects waves between the dielectric cores 2016. The axial cross section of the waveguide 2046 can be circular, elliptic, polygonal or otherwise conform to the cross-sectional shape of the dielectric cores 2016. Further, while an angle .theta..sub.3 of approximately 90 degrees is shown, other angles in the range of 0.ltoreq..theta..sub.3.ltoreq.180 degrees could likewise be implemented in a similar fashion.

Turning now to FIG. 20D, a block diagram 2060 is shown illustrating an example, non-limiting embodiment of a transmission medium for propagating guided electromagnetic waves. In particular, a transmission medium 2062 is presented that operates as a coaxial cable in a similar fashion to transmission medium 1800 presented in conjunction with FIG. 18A to propagate guided electromagnetic waves at RF frequencies millimeter wave frequencies, microwave frequencies or other non-optical frequencies via a dielectric core 2066 in a conductor-less fashion. A dielectric cladding 2064 is disposed about the outer surface of the dielectric core 2066. An insulating jacket 2065 surrounds the dielectric cladding 2064. The dielectric cladding 2064 can comprise, for example, a cellular plastic material such an expanded polyethylene material, or other suitable dielectric material(s). The insulating jacket 2065 can comprise, for example, a polyethylene material or equivalent.

The dielectric core 2066 includes a plurality of dielectric members 2068-1, 2068-2, 2068-3, 2068-4 . . . that are configured to longitudinally propagate guided electromagnetic waves at non-optical frequencies and therefore can be opaque to optical transmission. In particular, the dielectric members 2068-1, 2068-2, 2068-3, and 2068-4 are arranged end to end. In the example shown, the dielectric members 2068-1, 2068-2, 2068-3, and 2068-4 are constructed of rods of dielectric material such as barium titanate, rutile, rutile doped polyurethane or other dielectric having a very high dielectric constant and that may have a high shear modulus and therefore be quite rigid. As shown, the rods couple with one another via, for example, a dome at one end of the rod and a mating cup at the other end of the rod, however a ball and socket joint 2024 shown in conjunction with FIG. 20B or other mating configurations could likewise be employed. The axial cross section of the dielectric members 2068-1, 2068-2, 2068-3, and 2068-4 can be circular, elliptic, polygonal or other configurations that, for example, facilitate the mating of the dielectric members 2068-1, 2068-2, 2068-3, and 2068-4 for relatively seamless propagation of guided electromagnetic waves, with low loss and in greater flexibility when compared with a solid core. Further, while the dielectric members 2068-1, 2068-2, 2068-3, and 2068-4 are shown as rods, other shapes such as interlocking rings, chain links, or other interlocking or mating elements, can likewise be employed.

In operation, the guided electromagnetic waves propagate along the dielectric members 2068-1, 2068-2, 2068-3, and 2068-4 of the dielectric core 2066 in a longitudinal sequence. Consider a guided electromagnetic wave propagating in direction 2070. The guided electromagnetic wave propagates via dielectric member 2068-1, then dielectric member 2068-2, dielectric member 2068-3, and then dielectric member 2068-4. A guided electromagnetic wave propagating in direction 2072, propagates via dielectric member 2068-4, then dielectric member 2068-3, dielectric member 2068-2, and then dielectric member 2068-1. While design is usable at a wider range of non-optical frequencies, such a core 2066 is particularly suitable for use at lower microwave frequencies, such as frequencies below 10 GHz, because the higher dielectric constant reduces the dimensions of the guided electromagnetic waves, and consequently the dimensions of the transmission medium 2062. As discussed, larger values of dielectric constant d, can allow smaller values of core radius r, to satisfy the inequality below:

.times..pi..times..times..lamda.< ##EQU00002## where .lamda. represents the wavelength of the guided electromagnetic waves. The use of high dielectric constant materials, doping and/or suspensions can support more reasonable core sizes at lower frequencies.

Implementing a solid core of rigid material may not be practical however given its limited ability to flex. As used herein "rigid" mean a material with a shear modulus greater than 100 GPa. The use of a catena of rigid dielectric members to implement the dielectric members 2068-1, 2068-2, 2068-3, and 2068-4 in an end to end configuration provides the advantages of a homogeneous core, while allowing greater flexibility in the transmission medium 2062 when compared with solid or other rigid core designs.

Turning now to FIG. 20E, a block diagram 2075 is shown illustrating an example, non-limiting embodiment of a transmission medium for propagating guided electromagnetic waves. In particular, the transmission medium 2062 is shown again, with a slight bend or flex. As discussed in conjunction with FIG. 20D, the use of a catena of dielectric members 2068-1, 2068-2, 2068-3, and 2068-4 in an end to end configuration provides the advantages of a homogeneous core, while allowing greater flexibility in the transmission medium 2062 when compared with solid or other rigid core designs.

Turning now to FIG. 20F, a flow diagram is shown of an example, non-limiting embodiment of a method. In particular, a method 2080 is presented for use with one or more functions and features presented in conjunction with FIGS. 1-19 and 20A-E. Step 2082 includes receiving, at a first port of a connector, guided electromagnetic waves from a first dielectric core of a first conductor-less transmission medium; step 2084 includes transferring, via a waveguide of the connector, the guided electromagnetic waves to a second port of the connector; and step 2086 includes launching, via the second port of the connector, the guided electromagnetic waves on a second dielectric core of a second conductor-less transmission medium.

Turning now to FIG. 20G, a flow diagram is shown of an example, non-limiting embodiment of a method. In particular, a method 2090 is presented for use with one or more functions and features presented in conjunction with FIGS. 1-19 and 20A-E. Step 2092 includes receiving an electromagnetic wave. Step 2094 includes guiding the electromagnetic wave via a conductor-less transmission medium having a dielectric core comprising a plurality of rigid dielectric members configured to propagate the guided electromagnetic waves and a dielectric cladding that flexibly supports the dielectric core.

While for purposes of simplicity of explanation, the respective processes are shown and described as a series of blocks in FIGS. 20F and G, it is to be understood and appreciated that the claimed subject matter is not limited by the order of the blocks, as some blocks may occur in different orders and/or concurrently with other blocks from what is depicted and described herein. Moreover, not all illustrated blocks may be required to implement the methods described herein.

Referring now to FIG. 21, there is illustrated a block diagram of a computing environment in accordance with various aspects described herein. In order to provide additional context for various embodiments of the embodiments described herein, FIG. 21 and the following discussion are intended to provide a brief, general description of a suitable computing environment 2100 in which the various embodiments of the subject disclosure can be implemented. While the embodiments have been described above in the general context of computer-executable instructions that can run on one or more computers, those skilled in the art will recognize that the embodiments can be also implemented in combination with other program modules and/or as a combination of hardware and software.

Generally, program modules comprise routines, programs, components, data structures, etc., that perform particular tasks or implement particular abstract data types. Moreover, those skilled in the art will appreciate that the inventive methods can be practiced with other computer system configurations, comprising single-processor or multiprocessor computer systems, minicomputers, mainframe computers, as well as personal computers, hand-held computing devices, microprocessor-based or programmable consumer electronics, and the like, each of which can be operatively coupled to one or more associated devices.

As used herein, a processing circuit includes processor as well as other application specific circuits such as an application specific integrated circuit, digital logic circuit, state machine, programmable gate array or other circuit that processes input signals or data and that produces output signals or data in response thereto. It should be noted that while any functions and features described herein in association with the operation of a processor could likewise be performed by a processing circuit.

The terms "first," "second," "third," and so forth, as used in the claims, unless otherwise clear by context, is for clarity only and doesn't otherwise indicate or imply any order in time. For instance, "a first determination," "a second determination," and "a third determination," does not indicate or imply that the first determination is to be made before the second determination, or vice versa, etc.

The illustrated embodiments of the embodiments herein can be also practiced in distributed computing environments where certain tasks are performed by remote processing devices that are linked through a communications network. In a distributed computing environment, program modules can be located in both local and remote memory storage devices.

Computing devices typically comprise a variety of media, which can comprise computer-readable storage media and/or communications media, which two terms are used herein differently from one another as follows. Computer-readable storage media can be any available storage media that can be accessed by the computer and comprises both volatile and nonvolatile media, removable and non-removable media. By way of example, and not limitation, computer-readable storage media can be implemented in connection with any method or technology for storage of information such as computer-readable instructions, program modules, structured data or unstructured data.

Computer-readable storage media can comprise, but are not limited to, random access memory (RAM), read only memory (ROM), electrically erasable programmable read only memory (EEPROM), flash memory or other memory technology, compact disk read only memory (CD-ROM), digital versatile disk (DVD) or other optical disk storage, magnetic cassettes, magnetic tape, magnetic disk storage or other magnetic storage devices or other tangible and/or non-transitory media which can be used to store desired information. In this regard, the terms "tangible" or "non-transitory" herein as applied to storage, memory or computer-readable media, are to be understood to exclude only propagating transitory signals per se as modifiers and do not relinquish rights to all standard storage, memory or computer-readable media that are not only propagating transitory signals per se.

Computer-readable storage media can be accessed by one or more local or remote computing devices, e.g., via access requests, queries or other data retrieval protocols, for a variety of operations with respect to the information stored by the medium.

Communications media typically embody computer-readable instructions, data structures, program modules or other structured or unstructured data in a data signal such as a modulated data signal, e.g., a carrier wave or other transport mechanism, and comprises any information delivery or transport media. The term "modulated data signal" or signals refers to a signal that has one or more of its characteristics set or changed in such a manner as to encode information in one or more signals. By way of example, and not limitation, communication media comprise wired media, such as a wired network or direct-wired connection, and wireless media such as acoustic, RF, infrared and other wireless media.

With reference again to FIG. 21, the example environment 2100 for transmitting and receiving signals via or forming at least part of a base station (e.g., base station devices 1504, macrocell site 1502, or base stations 1614) or central office (e.g., central office 1501 or 1611). At least a portion of the example environment 2100 can also be used for transmission devices 101 or 102. The example environment can comprise a computer 2102, the computer 2102 comprising a processing unit 2104, a system memory 2106 and a system bus 2108. The system bus 2108 couples system components including, but not limited to, the system memory 2106 to the processing unit 2104. The processing unit 2104 can be any of various commercially available processors. Dual microprocessors and other multiprocessor architectures can also be employed as the processing unit 2104.

The system bus 2108 can be any of several types of bus structure that can further interconnect to a memory bus (with or without a memory controller), a peripheral bus, and a local bus using any of a variety of commercially available bus architectures. The system memory 2106 comprises ROM 2110 and RAM 2112. A basic input/output system (BIOS) can be stored in a non-volatile memory such as ROM, erasable programmable read only memory (EPROM), EEPROM, which BIOS contains the basic routines that help to transfer information between elements within the computer 2102, such as during startup. The RAM 2112 can also comprise a high-speed RAM such as static RAM for caching data.

The computer 2102 further comprises an internal hard disk drive (HDD) 2114 (e.g., EIDE, SATA), which internal hard disk drive 2114 can also be configured for external use in a suitable chassis (not shown), a magnetic floppy disk drive (FDD) 2116, (e.g., to read from or write to a removable diskette 2118) and an optical disk drive 2120, (e.g., reading a CD-ROM disk 2122 or, to read from or write to other high capacity optical media such as the DVD). The hard disk drive 2114, magnetic disk drive 2116 and optical disk drive 2120 can be connected to the system bus 2108 by a hard disk drive interface 2124, a magnetic disk drive interface 2126 and an optical drive interface 2128, respectively. The interface 2124 for external drive implementations comprises at least one or both of Universal Serial Bus (USB) and Institute of Electrical and Electronics Engineers (IEEE) 1394 interface technologies. Other external drive connection technologies are within contemplation of the embodiments described herein.

The drives and their associated computer-readable storage media provide nonvolatile storage of data, data structures, computer-executable instructions, and so forth. For the computer 2102, the drives and storage media accommodate the storage of any data in a suitable digital format. Although the description of computer-readable storage media above refers to a hard disk drive (HDD), a removable magnetic diskette, and a removable optical media such as a CD or DVD, it should be appreciated by those skilled in the art that other types of storage media which are readable by a computer, such as zip drives, magnetic cassettes, flash memory cards, cartridges, and the like, can also be used in the example operating environment, and further, that any such storage media can contain computer-executable instructions for performing the methods described herein.

A number of program modules can be stored in the drives and RAM 2112, comprising an operating system 2130, one or more application programs 2132, other program modules 2134 and program data 2136. All or portions of the operating system, applications, modules, and/or data can also be cached in the RAM 2112. The systems and methods described herein can be implemented utilizing various commercially available operating systems or combinations of operating systems. Examples of application programs 2132 that can be implemented and otherwise executed by processing unit 2104 include the diversity selection determining performed by transmission device 101 or 102.

A user can enter commands and information into the computer 2102 through one or more wired/wireless input devices, e.g., a keyboard 2138 and a pointing device, such as a mouse 2140. Other input devices (not shown) can comprise a microphone, an infrared (IR) remote control, a joystick, a game pad, a stylus pen, touch screen or the like. These and other input devices are often connected to the processing unit 2104 through an input device interface 2142 that can be coupled to the system bus 2108, but can be connected by other interfaces, such as a parallel port, an IEEE 1394 serial port, a game port, a universal serial bus (USB) port, an IR interface, etc.

A monitor 2144 or other type of display device can be also connected to the system bus 2108 via an interface, such as a video adapter 2146. It will also be appreciated that in alternative embodiments, a monitor 2144 can also be any display device (e.g., another computer having a display, a smart phone, a tablet computer, etc.) for receiving display information associated with computer 2102 via any communication means, including via the Internet and cloud-based networks. In addition to the monitor 2144, a computer typically comprises other peripheral output devices (not shown), such as speakers, printers, etc.

The computer 2102 can operate in a networked environment using logical connections via wired and/or wireless communications to one or more remote computers, such as a remote computer(s) 2148. The remote computer(s) 2148 can be a workstation, a server computer, a router, a personal computer, portable computer, microprocessor-based entertainment appliance, a peer device or other common network node, and typically comprises many or all of the elements described relative to the computer 2102, although, for purposes of brevity, only a memory/storage device 2150 is illustrated. The logical connections depicted comprise wired/wireless connectivity to a local area network (LAN) 2152 and/or larger networks, e.g., a wide area network (WAN) 2154. Such LAN and WAN networking environments are commonplace in offices and companies, and facilitate enterprise-wide computer networks, such as intranets, all of which can connect to a global communications network, e.g., the Internet.

When used in a LAN networking environment, the computer 2102 can be connected to the local network 2152 through a wired and/or wireless communication network interface or adapter 2156. The adapter 2156 can facilitate wired or wireless communication to the LAN 2152, which can also comprise a wireless AP disposed thereon for communicating with the wireless adapter 2156.

When used in a WAN networking environment, the computer 2102 can comprise a modem 2158 or can be connected to a communications server on the WAN 2154 or has other means for establishing communications over the WAN 2154, such as by way of the Internet. The modem 2158, which can be internal or external and a wired or wireless device, can be connected to the system bus 2108 via the input device interface 2142. In a networked environment, program modules depicted relative to the computer 2102 or portions thereof, can be stored in the remote memory/storage device 2150. It will be appreciated that the network connections shown are example and other means of establishing a communications link between the computers can be used.

The computer 2102 can be operable to communicate with any wireless devices or entities operatively disposed in wireless communication, e.g., a printer, scanner, desktop and/or portable computer, portable data assistant, communications satellite, any piece of equipment or location associated with a wirelessly detectable tag (e.g., a kiosk, news stand, restroom), and telephone. This can comprise Wireless Fidelity (Wi-Fi) and BLUETOOTH.RTM. wireless technologies. Thus, the communication can be a predefined structure as with a conventional network or simply an ad hoc communication between at least two devices.

Wi-Fi can allow connection to the Internet from a couch at home, a bed in a hotel room or a conference room at work, without wires. Wi-Fi is a wireless technology similar to that used in a cell phone that enables such devices, e.g., computers, to send and receive data indoors and out; anywhere within the range of a base station. Wi-Fi networks use radio technologies called IEEE 802.11 (a, b, g, n, ac, ag etc.) to provide secure, reliable, fast wireless connectivity. A Wi-Fi network can be used to connect computers to each other, to the Internet, and to wired networks (which can use IEEE 802.3 or Ethernet). Wi-Fi networks operate in the unlicensed 2.4 and 5 GHz radio bands for example or with products that contain both bands (dual band), so the networks can provide real-world performance similar to the basic 10BaseT wired Ethernet networks used in many offices.

FIG. 22 presents an example embodiment 2200 of a mobile network platform 2210 that can implement and exploit one or more aspects of the disclosed subject matter described herein. In one or more embodiments, the mobile network platform 2210 can generate and receive signals transmitted and received by base stations (e.g., base station devices 1504, macrocell site 1502, or base stations 1614), central office (e.g., central office 1501 or 1611), or transmission device 101 or 102 associated with the disclosed subject matter. Generally, wireless network platform 2210 can comprise components, e.g., nodes, gateways, interfaces, servers, or disparate platforms, that facilitate both packet-switched (PS) (e.g., internet protocol (IP), frame relay, asynchronous transfer mode (ATM)) and circuit-switched (CS) traffic (e.g., voice and data), as well as control generation for networked wireless telecommunication. As a non-limiting example, wireless network platform 2210 can be included in telecommunications carrier networks, and can be considered carrier-side components as discussed elsewhere herein. Mobile network platform 2210 comprises CS gateway node(s) 2222 which can interface CS traffic received from legacy networks like telephony network(s) 2240 (e.g., public switched telephone network (PSTN), or public land mobile network (PLMN)) or a signaling system #7 (SS7) network 2270. Circuit switched gateway node(s) 2222 can authorize and authenticate traffic (e.g., voice) arising from such networks. Additionally, CS gateway node(s) 2222 can access mobility, or roaming, data generated through SS7 network 2270; for instance, mobility data stored in a visited location register (VLR), which can reside in memory 2230. Moreover, CS gateway node(s) 2222 interfaces CS-based traffic and signaling and PS gateway node(s) 2218. As an example, in a 3GPP UMTS network, CS gateway node(s) 2222 can be realized at least in part in gateway GPRS support node(s) (GGSN). It should be appreciated that functionality and specific operation of CS gateway node(s) 2222, PS gateway node(s) 2218, and serving node(s) 2216, is provided and dictated by radio technology(ies) utilized by mobile network platform 2210 for telecommunication.

In addition to receiving and processing CS-switched traffic and signaling, PS gateway node(s) 2218 can authorize and authenticate PS-based data sessions with served mobile devices. Data sessions can comprise traffic, or content(s), exchanged with networks external to the wireless network platform 2210, like wide area network(s) (WANs) 2250, enterprise network(s) 2270, and service network(s) 2280, which can be embodied in local area network(s) (LANs), can also be interfaced with mobile network platform 2210 through PS gateway node(s) 2218. It is to be noted that WANs 2250 and enterprise network(s) 2260 can embody, at least in part, a service network(s) like IP multimedia subsystem (IMS). Based on radio technology layer(s) available in technology resource(s) 2217, packet-switched gateway node(s) 2218 can generate packet data protocol contexts when a data session is established; other data structures that facilitate routing of packetized data also can be generated. To that end, in an aspect, PS gateway node(s) 2218 can comprise a tunnel interface (e.g., tunnel termination gateway (TTG) in 3GPP UMTS network(s) (not shown)) which can facilitate packetized communication with disparate wireless network(s), such as Wi-Fi networks.

In embodiment 2200, wireless network platform 2210 also comprises serving node(s) 2216 that, based upon available radio technology layer(s) within technology resource(s) 2217, convey the various packetized flows of data streams received through PS gateway node(s) 2218. It is to be noted that for technology resource(s) 2217 that rely primarily on CS communication, server node(s) can deliver traffic without reliance on PS gateway node(s) 2218; for example, server node(s) can embody at least in part a mobile switching center. As an example, in a 3GPP UMTS network, serving node(s) 2216 can be embodied in serving GPRS support node(s) (SGSN).

For radio technologies that exploit packetized communication, server(s) 2214 in wireless network platform 2210 can execute numerous applications that can generate multiple disparate packetized data streams or flows, and manage (e.g., schedule, queue, format . . . ) such flows. Such application(s) can comprise add-on features to standard services (for example, provisioning, billing, customer support . . . ) provided by wireless network platform 2210. Data streams (e.g., content(s) that are part of a voice call or data session) can be conveyed to PS gateway node(s) 2218 for authorization/authentication and initiation of a data session, and to serving node(s) 2216 for communication thereafter. In addition to application server, server(s) 2214 can comprise utility server(s), a utility server can comprise a provisioning server, an operations and maintenance server, a security server that can implement at least in part a certificate authority and firewalls as well as other security mechanisms, and the like. In an aspect, security server(s) secure communication served through wireless network platform 2210 to ensure network's operation and data integrity in addition to authorization and authentication procedures that CS gateway node(s) 2222 and PS gateway node(s) 2218 can enact. Moreover, provisioning server(s) can provision services from external network(s) like networks operated by a disparate service provider; for instance, WAN 2250 or Global Positioning System (GPS) network(s) (not shown). Provisioning server(s) can also provision coverage through networks associated to wireless network platform 2210 (e.g., deployed and operated by the same service provider), such as the distributed antennas networks shown in FIG. 1(s) that enhance wireless service coverage by providing more network coverage. Repeater devices such as those shown in FIGS. 7, 8, and 9 also improve network coverage in order to enhance subscriber service experience by way of UE 2275.

It is to be noted that server(s) 2214 can comprise one or more processors configured to confer at least in part the functionality of wireless network platform 2210. To that end, the one or more processor can execute code instructions stored in memory 2230, for example. It is should be appreciated that server(s) 2214 can comprise a content manager 2215, which operates in substantially the same manner as described hereinbefore.

In example embodiment 2200, memory 2230 can store information related to operation of wireless network platform 2210. Other operational information can comprise provisioning information of mobile devices served through wireless network platform 2210, subscriber databases; application intelligence, pricing schemes, e.g., promotional rates, flat-rate programs, couponing campaigns; technical specification(s) consistent with telecommunication protocols for operation of disparate radio, or wireless, technology layers; and so forth. Memory 2230 can also store information from at least one of telephony network(s) 2240, WAN 2250, enterprise network(s) 2270, or SS7 network 2260. In an aspect, memory 2230 can be, for example, accessed as part of a data store component or as a remotely connected memory store.

In order to provide a context for the various aspects of the disclosed subject matter, FIG. 22, and the following discussion, are intended to provide a brief, general description of a suitable environment in which the various aspects of the disclosed subject matter can be implemented. While the subject matter has been described above in the general context of computer-executable instructions of a computer program that runs on a computer and/or computers, those skilled in the art will recognize that the disclosed subject matter also can be implemented in combination with other program modules. Generally, program modules comprise routines, programs, components, data structures, etc. that perform particular tasks and/or implement particular abstract data types.

FIG. 23 depicts an illustrative embodiment of a communication device 2300. The communication device 2300 can serve as an illustrative embodiment of devices such as mobile devices and in-building devices referred to by the subject disclosure (e.g., in FIGS. 15, 16A and 16B).

The communication device 2300 can comprise a wireline and/or wireless transceiver 2302 (herein transceiver 2302), a user interface (UI) 2304, a power supply 2314, a location receiver 2316, a motion sensor 2318, an orientation sensor 2320, and a controller 2306 for managing operations thereof. The transceiver 2302 can support short-range or long-range wireless access technologies such as Bluetooth.RTM., ZigBee.RTM., WiFi, DECT, or cellular communication technologies, just to mention a few (Bluetooth.RTM. and ZigBee.RTM. are trademarks registered by the Bluetooth.RTM. Special Interest Group and the ZigBee.RTM. Alliance, respectively). Cellular technologies can include, for example, CDMA-1.times., UMTS/HSDPA, GSM/GPRS, TDMA/EDGE, EV/DO, WiMAX, SDR, LTE, as well as other next generation wireless communication technologies as they arise. The transceiver 2302 can also be adapted to support circuit-switched wireline access technologies (such as PSTN), packet-switched wireline access technologies (such as TCP/IP, VoIP, etc.), and combinations thereof.

The UI 2304 can include a depressible or touch-sensitive keypad 2308 with a navigation mechanism such as a roller ball, a joystick, a mouse, or a navigation disk for manipulating operations of the communication device 2300. The keypad 2308 can be an integral part of a housing assembly of the communication device 2300 or an independent device operably coupled thereto by a tethered wireline interface (such as a USB cable) or a wireless interface supporting for example Bluetooth.RTM.. The keypad 2308 can represent a numeric keypad commonly used by phones, and/or a QWERTY keypad with alphanumeric keys. The UI 2304 can further include a display 2310 such as monochrome or color LCD (Liquid Crystal Display), OLED (Organic Light Emitting Diode) or other suitable display technology for conveying images to an end user of the communication device 2300. In an embodiment where the display 2310 is touch-sensitive, a portion or all of the keypad 2308 can be presented by way of the display 2310 with navigation features.

The display 2310 can use touch screen technology to also serve as a user interface for detecting user input. As a touch screen display, the communication device 2300 can be adapted to present a user interface having graphical user interface (GUI) elements that can be selected by a user with a touch of a finger. The touch screen display 2310 can be equipped with capacitive, resistive or other forms of sensing technology to detect how much surface area of a user's finger has been placed on a portion of the touch screen display. This sensing information can be used to control the manipulation of the GUI elements or other functions of the user interface. The display 2310 can be an integral part of the housing assembly of the communication device 2300 or an independent device communicatively coupled thereto by a tethered wireline interface (such as a cable) or a wireless interface.

The UI 2304 can also include an audio system 2312 that utilizes audio technology for conveying low volume audio (such as audio heard in proximity of a human ear) and high volume audio (such as speakerphone for hands free operation). The audio system 2312 can further include a microphone for receiving audible signals of an end user. The audio system 2312 can also be used for voice recognition applications. The UI 2304 can further include an image sensor 2313 such as a charged coupled device (CCD) camera for capturing still or moving images.

The power supply 2314 can utilize common power management technologies such as replaceable and rechargeable batteries, supply regulation technologies, and/or charging system technologies for supplying energy to the components of the communication device 2300 to facilitate long-range or short-range portable communications. Alternatively, or in combination, the charging system can utilize external power sources such as DC power supplied over a physical interface such as a USB port or other suitable tethering technologies.

The location receiver 2316 can utilize location technology such as a global positioning system (GPS) receiver capable of assisted GPS for identifying a location of the communication device 2300 based on signals generated by a constellation of GPS satellites, which can be used for facilitating location services such as navigation. The motion sensor 2318 can utilize motion sensing technology such as an accelerometer, a gyroscope, or other suitable motion sensing technology to detect motion of the communication device 2300 in three-dimensional space. The orientation sensor 2320 can utilize orientation sensing technology such as a magnetometer to detect the orientation of the communication device 2300 (north, south, west, and east, as well as combined orientations in degrees, minutes, or other suitable orientation metrics).

The communication device 2300 can use the transceiver 2302 to also determine a proximity to a cellular, WiFi, Bluetooth.RTM., or other wireless access points by sensing techniques such as utilizing a received signal strength indicator (RSSI) and/or signal time of arrival (TOA) or time of flight (TOF) measurements. The controller 2306 can utilize computing technologies such as a microprocessor, a digital signal processor (DSP), programmable gate arrays, application specific integrated circuits, and/or a video processor with associated storage memory such as Flash, ROM, RAM, SRAM, DRAM or other storage technologies for executing computer instructions, controlling, and processing data supplied by the aforementioned components of the communication device 2300.

Other components not shown in FIG. 23 can be used in one or more embodiments of the subject disclosure. For instance, the communication device 2300 can include a slot for adding or removing an identity module such as a Subscriber Identity Module (SIM) card or Universal Integrated Circuit Card (UICC). SIM or UICC cards can be used for identifying subscriber services, executing programs, storing subscriber data, and so on.

In the subject specification, terms such as "store," "storage," "data store," data storage," "database," and substantially any other information storage component relevant to operation and functionality of a component, refer to "memory components," or entities embodied in a "memory" or components comprising the memory. It will be appreciated that the memory components described herein can be either volatile memory or nonvolatile memory, or can comprise both volatile and nonvolatile memory, by way of illustration, and not limitation, volatile memory, non-volatile memory, disk storage, and memory storage. Further, nonvolatile memory can be included in read only memory (ROM), programmable ROM (PROM), electrically programmable ROM (EPROM), electrically erasable ROM (EEPROM), or flash memory. Volatile memory can comprise random access memory (RAM), which acts as external cache memory. By way of illustration and not limitation, RAM is available in many forms such as synchronous RAM (SRAM), dynamic RAM (DRAM), synchronous DRAM (SDRAM), double data rate SDRAM (DDR SDRAM), enhanced SDRAM (ESDRAM), Synchlink DRAM (SLDRAM), and direct Rambus RAM (DRRAM). Additionally, the disclosed memory components of systems or methods herein are intended to comprise, without being limited to comprising, these and any other suitable types of memory.

Moreover, it will be noted that the disclosed subject matter can be practiced with other computer system configurations, comprising single-processor or multiprocessor computer systems, mini-computing devices, mainframe computers, as well as personal computers, hand-held computing devices (e.g., PDA, phone, smartphone, watch, tablet computers, netbook computers, etc.), microprocessor-based or programmable consumer or industrial electronics, and the like. The illustrated aspects can also be practiced in distributed computing environments where tasks are performed by remote processing devices that are linked through a communications network; however, some if not all aspects of the subject disclosure can be practiced on stand-alone computers. In a distributed computing environment, program modules can be located in both local and remote memory storage devices.

Some of the embodiments described herein can also employ artificial intelligence (AI) to facilitate automating one or more features described herein. For example, artificial intelligence can be used in optional training controller 230 evaluate and select candidate frequencies, modulation schemes, MIMO modes, and/or guided wave modes in order to maximize transfer efficiency. The embodiments (e.g., in connection with automatically identifying acquired cell sites that provide a maximum value/benefit after addition to an existing communication network) can employ various AI-based schemes for carrying out various embodiments thereof. Moreover, the classifier can be employed to determine a ranking or priority of the each cell site of the acquired network. A classifier is a function that maps an input attribute vector, x=(x1, x2, x3, x4, . . ., xn), to a confidence that the input belongs to a class, that is, f(x)=confidence (class). Such classification can employ a probabilistic and/or statistical-based analysis (e.g., factoring into the analysis utilities and costs) to prognose or infer an action that a user desires to be automatically performed. A support vector machine (SVM) is an example of a classifier that can be employed. The SVM operates by finding a hypersurface in the space of possible inputs, which the hypersurface attempts to split the triggering criteria from the non-triggering events. Intuitively, this makes the classification correct for testing data that is near, but not identical to training data. Other directed and undirected model classification approaches comprise, e.g., naive Bayes, Bayesian networks, decision trees, neural networks, fuzzy logic models, and probabilistic classification models providing different patterns of independence can be employed. Classification as used herein also is inclusive of statistical regression that is utilized to develop models of priority.

As will be readily appreciated, one or more of the embodiments can employ classifiers that are explicitly trained (e.g., via a generic training data) as well as implicitly trained (e.g., via observing UE behavior, operator preferences, historical information, receiving extrinsic information). For example, SVMs can be configured via a learning or training phase within a classifier constructor and feature selection module. Thus, the classifier(s) can be used to automatically learn and perform a number of functions, including but not limited to determining according to a predetermined criteria which of the acquired cell sites will benefit a maximum number of subscribers and/or which of the acquired cell sites will add minimum value to the existing communication network coverage, etc.

As used in some contexts in this application, in some embodiments, the terms "component," "system" and the like are intended to refer to, or comprise, a computer-related entity or an entity related to an operational apparatus with one or more specific functionalities, wherein the entity can be either hardware, a combination of hardware and software, software, or software in execution. As an example, a component may be, but is not limited to being, a process running on a processor, a processor, an object, an executable, a thread of execution, computer-executable instructions, a program, and/or a computer. By way of illustration and not limitation, both an application running on a server and the server can be a component. One or more components may reside within a process and/or thread of execution and a component may be localized on one computer and/or distributed between two or more computers. In addition, these components can execute from various computer readable media having various data structures stored thereon. The components may communicate via local and/or remote processes such as in accordance with a signal having one or more data packets (e.g., data from one component interacting with another component in a local system, distributed system, and/or across a network such as the Internet with other systems via the signal). As another example, a component can be an apparatus with specific functionality provided by mechanical parts operated by electric or electronic circuitry, which is operated by a software or firmware application executed by a processor, wherein the processor can be internal or external to the apparatus and executes at least a part of the software or firmware application. As yet another example, a component can be an apparatus that provides specific functionality through electronic components without mechanical parts, the electronic components can comprise a processor therein to execute software or firmware that confers at least in part the functionality of the electronic components. While various components have been illustrated as separate components, it will be appreciated that multiple components can be implemented as a single component, or a single component can be implemented as multiple components, without departing from example embodiments.

Further, the various embodiments can be implemented as a method, apparatus or article of manufacture using standard programming and/or engineering techniques to produce software, firmware, hardware or any combination thereof to control a computer to implement the disclosed subject matter. The term "article of manufacture" as used herein is intended to encompass a computer program accessible from any computer-readable device or computer-readable storage/communications media. For example, computer readable storage media can include, but are not limited to, magnetic storage devices (e.g., hard disk, floppy disk, magnetic strips), optical disks (e.g., compact disk (CD), digital versatile disk (DVD)), smart cards, and flash memory devices (e.g., card, stick, key drive). Of course, those skilled in the art will recognize many modifications can be made to this configuration without departing from the scope or spirit of the various embodiments.

In addition, the words "example" and "exemplary" are used herein to mean serving as an instance or illustration. Any embodiment or design described herein as "example" or "exemplary" is not necessarily to be construed as preferred or advantageous over other embodiments or designs. Rather, use of the word example or exemplary is intended to present concepts in a concrete fashion. As used in this application, the term "or" is intended to mean an inclusive "or" rather than an exclusive "or". That is, unless specified otherwise or clear from context, "X employs A or B" is intended to mean any of the natural inclusive permutations. That is, if X employs A; X employs B; or X employs both A and B, then "X employs A or B" is satisfied under any of the foregoing instances. In addition, the articles "a" and "an" as used in this application and the appended claims should generally be construed to mean "one or more" unless specified otherwise or clear from context to be directed to a singular form.

Moreover, terms such as "user equipment," "mobile station," "mobile," subscriber station," "access terminal," "terminal," "handset," "mobile device" (and/or terms representing similar terminology) can refer to a wireless device utilized by a subscriber or user of a wireless communication service to receive or convey data, control, voice, video, sound, gaming or substantially any data-stream or signaling-stream. The foregoing terms are utilized interchangeably herein and with reference to the related drawings.

Furthermore, the terms "user," "subscriber," "customer," "consumer" and the like are employed interchangeably throughout, unless context warrants particular distinctions among the terms. It should be appreciated that such terms can refer to human entities or automated components supported through artificial intelligence (e.g., a capacity to make inference based, at least, on complex mathematical formalisms), which can provide simulated vision, sound recognition and so forth.

As employed herein, the term "processor" can refer to substantially any computing processing unit or device comprising, but not limited to comprising, single-core processors; single-processors with software multithread execution capability; multi-core processors; multi-core processors with software multithread execution capability; multi-core processors with hardware multithread technology; parallel platforms; and parallel platforms with distributed shared memory. Additionally, a processor can refer to an integrated circuit, an application specific integrated circuit (ASIC), a digital signal processor (DSP), a field programmable gate array (FPGA), a programmable logic controller (PLC), a complex programmable logic device (CPLD), a discrete gate or transistor logic, discrete hardware components or any combination thereof designed to perform the functions described herein. Processors can exploit nano-scale architectures such as, but not limited to, molecular and quantum-dot based transistors, switches and gates, in order to optimize space usage or enhance performance of user equipment. A processor can also be implemented as a combination of computing processing units.

As used herein, terms such as "data storage," data storage," "database," and substantially any other information storage component relevant to operation and functionality of a component, refer to "memory components," or entities embodied in a "memory" or components comprising the memory. It will be appreciated that the memory components or computer-readable storage media, described herein can be either volatile memory or nonvolatile memory or can include both volatile and nonvolatile memory.

What has been described above includes mere examples of various embodiments. It is, of course, not possible to describe every conceivable combination of components or methodologies for purposes of describing these examples, but one of ordinary skill in the art can recognize that many further combinations and permutations of the present embodiments are possible. Accordingly, the embodiments disclosed and/or claimed herein are intended to embrace all such alterations, modifications and variations that fall within the spirit and scope of the appended claims. Furthermore, to the extent that the term "includes" is used in either the detailed description or the claims, such term is intended to be inclusive in a manner similar to the term "comprising" as "comprising" is interpreted when employed as a transitional word in a claim.

In addition, a flow diagram may include a "start" and/or "continue" indication. The "start" and "continue" indications reflect that the steps presented can optionally be incorporated in or otherwise used in conjunction with other routines. In this context, "start" indicates the beginning of the first step presented and may be preceded by other activities not specifically shown. Further, the "continue" indication reflects that the steps presented may be performed multiple times and/or may be succeeded by other activities not specifically shown. Further, while a flow diagram indicates a particular ordering of steps, other orderings are likewise possible provided that the principles of causality are maintained.

As may also be used herein, the term(s) "operably coupled to", "coupled to", and/or "coupling" includes direct coupling between items and/or indirect coupling between items via one or more intervening items. Such items and intervening items include, but are not limited to, junctions, communication paths, components, circuit elements, circuits, functional blocks, and/or devices. As an example of indirect coupling, a signal conveyed from a first item to a second item may be modified by one or more intervening items by modifying the form, nature or format of information in a signal, while one or more elements of the information in the signal are nevertheless conveyed in a manner than can be recognized by the second item. In a further example of indirect coupling, an action in a first item can cause a reaction on the second item, as a result of actions and/or reactions in one or more intervening items.

Although specific embodiments have been illustrated and described herein, it should be appreciated that any arrangement which achieves the same or similar purpose may be substituted for the embodiments described or shown by the subject disclosure. The subject disclosure is intended to cover any and all adaptations or variations of various embodiments. Combinations of the above embodiments, and other embodiments not specifically described herein, can be used in the subject disclosure. For instance, one or more features from one or more embodiments can be combined with one or more features of one or more other embodiments. In one or more embodiments, features that are positively recited can also be negatively recited and excluded from the embodiment with or without replacement by another structural and/or functional feature. The steps or functions described with respect to the embodiments of the subject disclosure can be performed in any order. The steps or functions described with respect to the embodiments of the subject disclosure can be performed alone or in combination with other steps or functions of the subject disclosure, as well as from other embodiments or from other steps that have not been described in the subject disclosure. Further, more than or less than all of the features described with respect to an embodiment can also be utilized.

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