Volume 48 Issue 9
Oct.  2019
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Li Jiaxin, Bai Tingzhu, Cui Zhigang, Song Cuifen, Cheng Zeming. Coupling implementation of pixel polarization imaging system[J]. Infrared and Laser Engineering, 2019, 48(9): 925001-0925001(7). doi: 10.3788/IRLA201948.0925001
Citation: Li Jiaxin, Bai Tingzhu, Cui Zhigang, Song Cuifen, Cheng Zeming. Coupling implementation of pixel polarization imaging system[J]. Infrared and Laser Engineering, 2019, 48(9): 925001-0925001(7). doi: 10.3788/IRLA201948.0925001

Coupling implementation of pixel polarization imaging system

doi: 10.3788/IRLA201948.0925001
  • Received Date: 2019-05-11
  • Rev Recd Date: 2019-06-21
  • Publish Date: 2019-09-25
  • The coupling technology of the pixel polarization imaging system was studied by aligning the pixel polarizer array with the CCD photosensitive element. Aiming at the problem that the polarizer group array and CCD size do not match, a variety of process methods were used for processing, and a complete coupling alignment process was proposed. The imaging system developed in this paper can obtain four Stokes components with different polarization directions through one imaging detector. After operation and post-processing, it could also obtain the linear polarization image and the linear polarization angle image of the captured object, which realized the polarization enhancement of the image. The required polarization image facilitates the acquisition of target information in a complex environment.
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    [2] Zeng Xiangwei, Chu Jinkui, Kang Weidong. Infrared circularly polarized light fog permeability energy analysis[J]. Infrared and Laser Engineering, 2017, 46(12):1204002. (in Chinese)曾祥伟, 褚金奎, 康维东. 红外圆偏振光透雾性能分析[J].红外与激光工程, 2017, 46(12):1204002.
    [3] Wang Qi, Liang Jingqiu, Liang Zhonghe, et al. Optical system design of aperture-divided infrared polarization imager[J]. China Optics, 2018, 11(1):92-99. (in Chinese)王琪, 梁静秋, 梁中翥, 等.分孔径红外偏振成像仪光学系统设计[J]. 中国光学, 2018, 11(01):92-99.
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    [10] Zhang Zhigang, Dong Fengliang, Cheng Teng, et al. Real-time dynamic phase measurement technology based on pixel polarizer array[J]. Chinese Science:Technology Science, 2015, 45(5):491-497. (in Chinese)张志刚, 董凤良, 程腾, 等. 基于像素偏振片阵列的实时动态相位测量技术[J]. 中国科学:技术科学, 2015, 45(5):491-497.
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Coupling implementation of pixel polarization imaging system

doi: 10.3788/IRLA201948.0925001
  • 1. School of Optics and Photonics,Beijing Institute of Technology,Beijing 100081,China;
  • 2. China General Technology Research Institute,Beijing 100091,China

Abstract: The coupling technology of the pixel polarization imaging system was studied by aligning the pixel polarizer array with the CCD photosensitive element. Aiming at the problem that the polarizer group array and CCD size do not match, a variety of process methods were used for processing, and a complete coupling alignment process was proposed. The imaging system developed in this paper can obtain four Stokes components with different polarization directions through one imaging detector. After operation and post-processing, it could also obtain the linear polarization image and the linear polarization angle image of the captured object, which realized the polarization enhancement of the image. The required polarization image facilitates the acquisition of target information in a complex environment.

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