Патент США № | 9885784 |
---|---|
Автор(ы) | Ranney и др. |
Дата выдачи | 06 февраля 2018 г. |
A system and method for locating a man-made object comprising a transmitter and receiver combination or transceiver configured to emit mixtures of polarizations comprising HH, VV, VH and or HV polarization images, at least one processor configured to form co-polarimetric and cross-polarimetric images, to select a pixel under test and analyze the surrounding pixels by performing spatial averaging using the cross polarimetric image, and to replace the pixel under test and the pixels adjacent thereto with an average pixel value calculated from the pixel under test and pixels adjacent thereto; the at least one processor configured to diminish background effects to produce clearer co-polarimetric and cross-polarimetric images and to locate the left-right point of symmetry indicative of a man-made object by comparing each pixel under test in the cross-polarimetric image to pixels in the vicinity to locate an intensity differential in excess of 3 dB.
Авторы: | Kenneth Irving Ranney (Rockville, MD), David Chun Wong (Clarksville, MD), Tuan That Ton (Springfield, VA) | ||||||||||
---|---|---|---|---|---|---|---|---|---|---|---|
Патентообладатель: |
|
||||||||||
Заявитель: | The United States of America as represented by the Secretary of the Army (Washington, DC) |
||||||||||
ID семейства патентов | 60807385 | ||||||||||
Номер заявки: | 14/563,270 | ||||||||||
Дата регистрации: | 08 декабря 2014 г. |
Document Identifier | Publication Date | |
---|---|---|
US 20180003815 A1 | Jan 4, 2018 | |
Класс патентной классификации США: | 1/1 |
Класс совместной патентной классификации: | G01S 13/887 (20130101); G01S 13/90 (20130101); G01S 7/2923 (20130101); G01S 13/904 (20190501); G01S 13/9029 (20130101); G01S 13/9076 (20190501) |
Класс международной патентной классификации (МПК): | G01S 13/90 (20060101); G01S 13/88 (20060101) |
Область поиска: | ;342/25R,25F |
6750805 | June 2004 | Cameron |
8125370 | February 2012 | Rogers |
9395437 | July 2016 | Ton et al. |
2005/0010621 | January 2005 | Pinto |
2013/0229525 | September 2013 | Nagaoka |
2013/0328860 | December 2013 | Swart |
Mpriyame, T. et al., "A Study on Extraction of Urban Areas from Polarimetric Synthetic Aperture Radar image," Proceedings of the 2004 IEEE International Geoscience and Remote Sensing Symposium, pp. 703-706. cited by applicant . Nshiem, S.V., et al., "Symmetry Properties in Polarimetric Remote Sensing," Radio Science, vol. 27, No. 5, Sep.-Oct. 1992, pp. 693-711. cited by applicant . Wolfgang-Martin Boehner, "Basic Concepts in Radar Polarimetry" Polsarpro V3.0--Lecture Notes, http://earth.esa.int/Iandtraining07/polsar.sub.--basic.sub.--concepts.pdf (circa 2007). cited by applicant . Novak, L.M., et al, "Optimal Polarimetric Processing for Enhanced Target Detection," IEEE Transactions on Aerospace and Electronic Systems, vol. 29, No. 1, Jan. 1993, pp. 234-244. cited by applicant . Zhang, L., et al. "Comparison of Methods for Target Detection and Applications Using Polarimetric SAR Image," PIERS Online, vol. 4, No. 1, 2008, pp. 140-145. cited by applicant . Novak, L., et al., "Optimal Speckle Reduction in Polarimetric SAR Imagery," IEEE Transactions on Aerospace and Electronic Systems, vol. 26, No. 2, Mar. 1990, pp. 293-305. cited by applicant . Banerjee, A., et al., "Adaptive Target Detection in Foliage-Penetrating SAR Images Using Alpha-stable Models," IEEE Transactions on Image Processing, vol. 8, No. 12, 1999, pp. 1823-1831. cited by applicant . Williams, M,. et al. "Demonstration of Reduced False Alarm Rates using Simulated L-Band Polarimetric SAR Imagery of Concealed Targets," Proceedings of 2003 IEEE International Radar Conference, 2003, pp. 535-540. cited by applicant . Cloude SR, Pottier E., "A review of target decomposition theorems in radar polarimetry," IEEE Trans on Geoscience and Remote Sensing. Mar. 1996;34(2):498-518. cited by applicant . Nghiem SV, Yueh SH, Kwok R, Li FK, "Symmetry properties in polarimetric remote sensing," Radio Science. Sep.-Oct. 1992;27(5):693-711. cited by applicant . Wolfgang-Martin Boehner, "Basic Concepts in Radar Polarimetry" Polsarpro V3.0--Lecture Notes, http://earth.esa.int/landtraining07/polsar.sub.--basic.sub.--concepts.pdf (circa 2007). cited by applicant . Pottier, Eric, et al. "Polsarpro V3.0--Lecture Notes 1--Advanced Concepts" (circa 2007). cited by applicant . Simms, Janet E., "Applications of Synthetic Aperture Radar (SAR) to Unexploded Ordnance (UXO) Delineation," ERDC/GSL TR-03-15, US Army Corps of Engineers, Engineering Research and Development Center, Aug. 2003. cited by applicant . D.Liao and T. Dogaru, "Full-Wave Characterization of Rough Terrain Surface Scattering for Forward-Looking Radar Applications," IEEE Transactions on Antennas and Propagation, vol. 60, No. 8, Aug. 2012, pp. 3853-3866. cited by applicant . D. Liao, T. Dogaru, A. Sullivan, "Large-Scale, Full-Wave-Based Emulation of Step-Frequency Forward-Looking Radar Imaging in Rough Terrain Environments," Sensing and Imaging, vol. 15, Issue 1, Apr. 2014. cited by applicant . El-Darymli K, McGuire P, Power D, Moloney C. "Target detection in synthetic aperture radar imagery: a state-of-the-art survey.," SPIE Journal of Applied Remote Sensing. 2013;7:071598-1-071598-35. cited by applicant . V. Alberga, E. Krogager, M. Chandra, and G. Wanielik, "Potential of coherent decompositions in SAR polarimetry and interferometry," Proceedings of the 2004 IEEE Geoscience and Remote Sensing Symposium, IGARSS '04, vol. 3, Sep. 20-24, 2004, pp. 1792-1795. cited by applicant. |