Volume 46 Issue 10
Nov.  2017
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Liang Jian'an, Zhao Wanli, Wang Xia, He Si, Jin Weiqi. Effect of the background clutter on the operating range of infrared polarization imaging system[J]. Infrared and Laser Engineering, 2017, 46(10): 1004003-1004003(7). doi: 10.3788/IRLA201782.1004003
Citation: Liang Jian'an, Zhao Wanli, Wang Xia, He Si, Jin Weiqi. Effect of the background clutter on the operating range of infrared polarization imaging system[J]. Infrared and Laser Engineering, 2017, 46(10): 1004003-1004003(7). doi: 10.3788/IRLA201782.1004003

Effect of the background clutter on the operating range of infrared polarization imaging system

doi: 10.3788/IRLA201782.1004003
  • Received Date: 2017-02-05
  • Rev Recd Date: 2017-03-03
  • Publish Date: 2017-10-25
  • The operating range model of the infrared polarization imaging system was established based on the minimum resolvable temperature difference(MRTD) between the target and the background. The impact of the background clutter on the operating range was also analyzed. Simulation results show that the operating range is concurrently dependent on the target/background polarization characteristics, atmospheric transmission and the observation geometry. Among these factors, the background clutter greatly affects the operating range of infrared polarization imaging system. Besides, polarization imaging mode and intensity imaging mode may have different advantages compared with each other under different imaging conditions.
  • [1] Hu Xiaoqiang, Zhang Jing. Analysis of the operating range for polarization infrared detection system[J]. Laser Infrared, 2016, 45(6):709-712. (in Chinese)胡晓强, 张晶. 红外偏振探测系统的作用距离分析[J]. 激光与红外, 2016, 45(6):709-712.
    [2] Wang Xia, Xia Runqiu, Jin Weiqi, et al. Technology progress of infrared polarization imaging detection[J]. Infrared and Laser Engineering, 2014, 43(10):3175-3182. (in Chinese)王霞, 夏润秋, 金伟其, 等. 红外偏振成像探测技术进展[J]. 红外与激光工程, 2014, 43(10):3175-3182.
    [3] Guimaraes Edson F. Investigation of minimum resolvable temperature difference formulation for polarized thermal imaging range prediction[D]. Monterey:Naval Postgraduate School, 1999.
    [4] Mehmet Yildirim. Modeling second generation FLIR sensor detection recognition and identification range with polarization filtering[D]. Monterey:Naval Postgraduate School, 2000.
    [5] Zhou Chenghao. Moldeling and analysis of operating range of infrared polarization imaging system[D]. Harbin:Harbin Institute of Technology, 2013. (in Chinese)周程灏. 红外偏振成像系统作用距离建模与分析[D]. 哈尔滨:哈尔滨工业大学, 2013.
    [6] Zhao Dapeng, Shi Jiaming, Wang Jiachun, et al. Investigation of the operating range for polarized thermal imaging system[J]. Infrared and Laser Engineering, 2013, 42(5):1146-1152. (in Chinese)赵大鹏, 时家明, 汪家春, 等. 偏振热成像系统的作用距离分析[J]. 红外与激光工程, 2013, 42(5):1146-1152.
    [7] Xia Runqiu, Wang Xia, Jin Weiqi, et al. Distance model of infrared polarization imaging system used in sea-surface environment[J]. Infrared and Laser Engineering, 2016, 45(3):0304007. (in Chinese)夏润秋, 王霞, 金伟其, 等. 海面环境中红外偏振成像系统作用距离模型[J]. 红外与激光工程, 2016, 45(3):0304007.
    [8] Bai Tingzhu, Jin Weiqi. Principle and Technology of Photoelectric Imaging[M]. Beijing:Beijing Institute of Technology Press, 2010. (in Chinese)白廷柱, 金伟其. 光电成像原理与技术[M]. 北京:北京理工大学出版社, 2010.
    [9] Schmieder D E, Weathersby M R. Detection performance in clutter with variable resolution[J]. IEEE Transactions on Aerospace and Electronic Systems, 1983, 19(4):622-630.
    [10] Gerald C Holst. Electro-Optical Imaging System Performance[M]. Washington:SPIE Press, 2008:300-312.
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Effect of the background clutter on the operating range of infrared polarization imaging system

doi: 10.3788/IRLA201782.1004003
  • 1. Key Laboratory of Photoelectronic Imaging Technology and System,Ministry of Education of China,Beijing Institute of Technology,Beijing 100081,China;
  • 2. Science and Technology on Electro-Optical Information Security Control Laboratory,Sanhe 065201,China

Abstract: The operating range model of the infrared polarization imaging system was established based on the minimum resolvable temperature difference(MRTD) between the target and the background. The impact of the background clutter on the operating range was also analyzed. Simulation results show that the operating range is concurrently dependent on the target/background polarization characteristics, atmospheric transmission and the observation geometry. Among these factors, the background clutter greatly affects the operating range of infrared polarization imaging system. Besides, polarization imaging mode and intensity imaging mode may have different advantages compared with each other under different imaging conditions.

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