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一种适用于GEO SAR远地点的改进SRC算法 被引量:2

A Modified Secondary Range Compression Algorithm at Apogee in GRO SAR
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摘要 针对地球同步轨道合成孔径雷达在远地点采用原有的等效直线模型速度和斜视角会出现复数,以及"Stop-and-Go"假设不成立的问题,进行了二次距离压缩算法(SRC)的改进,提出了一种新的信号模型,修正了成像算法中的补偿函数,而且采用高阶近似的方法得到了精确的方位向调频率,改进了方位向压缩函数.结果表明改进的二次距离压缩算法可以在合成孔径时间100s内聚焦远地点40km×40km的场景,且场景边缘点的峰值旁瓣比和积分旁瓣比与理论值非常接近. It is known that computing the right range is very complex in geosynchronous orbit(GEO) synthetic aperture radar(SAR) for the factors that,firstly,the velocity and the slant angle at apogee fitted by the line trajectory model are the complex numbers and,secondly,"Stop-and-Go" assumption will brings about a range error.This paper explores the range issue and proposes a new range mode.It was found that the problem of complex number could be avoided by adopting the norm to express the range and the impacts of "Stop-and-Go" assumption might be considered in the modified range model.Based on the new range model,the expression of two-dimensional echo in frequency domain was deduced and the compensation function in the course of imaging algorithm was improved.Further,an accurate azimuth compression function was modified by means of a high-order chirp rate in azimuth.The result shows that a 40 km×40 km scene can be focused very well under the synthetic aperture time(SAT) of 100 s by the improved secondary range compression(SRC),and the peak side-lobe ratio(PSLR) and integrated side-lobe ratio(ISLR) of the edge points are very near to the theoretical value.
出处 《北京理工大学学报》 EI CAS CSCD 北大核心 2012年第3期307-310,326,共5页 Transactions of Beijing Institute of Technology
基金 国家自然科学基金重点资助项目(61032009)
关键词 地球同步轨道合成孔径雷达 “Stop-and-Go”假设 等效直线模型 二次距离压缩算法 geosynchronous orbit synthetic aperture radar(GEO SAR) "Stop-and-Go" assumption the line trajectory model secondary range compression(SRC) algorithm
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参考文献6

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同被引文献11

  • 1王燕宇,张长耀,王金根.GEO星机双/多基地SAR系统同步探讨[J].雷达科学与技术,2007,5(5):353-357. 被引量:2
  • 2Edelstein Wendy, Soren Madsen, Alina Moussessian, et al. Concepts and technologies for synthetic aperture radar from MEO and geosynchronous orbits [C] // Proceedings of Enabling Sensor and Platform Technologies for Spaceborne Remote Sensing. Beijingham, USA: [s. n. ], 2005:195 - 203.
  • 3Tomiyasu K. Synthetic aperture radar in geosynchronous orbit [C] // Proceedings of IEEE Antennas and Propagation Symp. Maryland, USA: University of Maryland, 1978:42 - 45.
  • 4NASA and JPL. Global earthquake satellite system: a 20-year plan to enable earthquake predietion[EB/OL]. [2003 - 05 -03]. http: // solidearth, jpl. nasa. gov/ GESS/3123_GESS_Rep 2003. pdf.
  • 5Hu Cheng, Liu Feifeng, Yang Wenfu, et al. Modification of slant range model and imaging processing[C]// Proceedings of IGARSS. Honolulu, Hawaii, America:[s. n. ] ,2010 :4679 - 4682.
  • 6Liu Zhipeng, Hu cheng, Zeng tao, et al. Improved secondary range compression focusing method[C]//Proceedings of ICASSP. Prague, Czech Republic: [s. n. ], 2011:1373 - 1376.
  • 7毛二可,曾涛,胡程,龙腾.基于地球同步轨道合成孔径雷达的双基地探测系统:概念及潜力[J].信号处理,2013,29(3):285-292. 被引量:9
  • 8张天,田卫明,曾涛,胡程.星地双基地SAR时频同步技术研究[J].信号处理,2013,29(3):326-335. 被引量:3
  • 9刘荦锶,吴立薪,胡程,曾涛,田卫明,朱茂.一静一动双基地SAR改进非线性CS算法[J].信号处理,2013,29(3):342-350. 被引量:2
  • 10田卫明,曾涛,胡程.基于导航信号的BiSAR成像技术[J].雷达学报(中英文),2013,2(1):39-45. 被引量:14

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