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首页> 外文期刊>International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences >POLARIMETRIC CALIBRATION OF THE SPACEBORNE DIRECTIONAL POLARIMETRIC CAMERA INSTALLED ON THE GF-5 SATELLITE
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POLARIMETRIC CALIBRATION OF THE SPACEBORNE DIRECTIONAL POLARIMETRIC CAMERA INSTALLED ON THE GF-5 SATELLITE

机译:在GF-5卫星上安装的太空载定向极性相机的偏振校准

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The Spaceborne Directional Polarimetric Camera (SDPC) is dedicated to obtain an accurate information of clouds and microphysical properties of aerosol particles via multi-angle, multi-spectral and multi-polarization observations. It images the Earth with 110° field of view (FOV) in 3 polarimetric spectral bands and 5 non-polarimetric spectral bands from visible to near infrared. Due to its wide FOV telecentric optical system and multi-channels, polarization sensitivity of optical components (PSOC) and non-uniform response of pixels (NURP) are the main uncertainty factors of polarimetric calibration.In this paper, a polarimetric calibration model of SDPC has been constructed for increasing the measurement accuracy. Combined an integrating sphere with a polarization generator as source, PSOC can be measured in high accuracy by using the Fourier series analysis method which reduces the impact form the alignment error of the generator. The sectional viewing field measurement method is used to acquire NURP while the large aperture integrating sphere served as reference source. Subsequently, the data of NURP have been corrected by the relative transmittance of high frequency and low frequency respectively for polarized channels. The result of validation experiment shows that the polarization measurement errors in 0°, 15°, 30°, and 45° half field of view (HFOV) are all less than 0.5% when the degree of linear polarization of reference source is larger than 0.1.
机译:星源定向偏振相机(SDPC)专用于通过多角度,多光谱和多极化观察获得气溶胶颗粒的云和微神科性质的准确信息。它在3个极化光谱带中的110°视野(FOV)和5个从红外线可见的5个非极化光谱带中的地球。由于其宽的FOV远心光学系统和多通道,光学组件(PSoC)的极化敏感性和像素(NURP)的非均匀响应是Polarimetric校准的主要不确定因素。本文是SDPC的偏振校准模型已建造以增加测量精度。将与偏振发生器的集成球体组合为源,PSoC可以通过使用傅里叶串联分析方法以高精度测量,这减少了发电机的对准误差。剖视图现场测量方法用于获取NURP,而大孔径集成球体作为参考源。随后,对于极化通道,通过高频和低频率的相对透射率校正了NERP的数据。验证实验的结果表明,当参考源的线性极化程度大于0.1时,偏振测量误差在0°,15°,30°和45°半视野(HFOV)中均小于0.5% 。

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