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利用斯托克斯矢量和穆勒矩阵的极分解对激光雷达中的偏振进行一般描述。

General description of polarization in lidar using Stokes vectors and polar decomposition of Mueller matrices.

作者信息

Hayman Matthew, Thayer Jeffrey P

机构信息

National Center for Atmospheric Research, Advanced Study Program, Boulder, Colorado 80307, USA.

出版信息

J Opt Soc Am A Opt Image Sci Vis. 2012 Apr 1;29(4):400-9. doi: 10.1364/JOSAA.29.000400.

Abstract

Polarization measurements have become nearly indispensible in lidar cloud and aerosol studies. Despite polarization's widespread use in lidar, its theoretical description has been widely varying in accuracy and completeness. Incomplete polarization lidar descriptions invariably result in poor accountability for scatterer properties and instrument effects, reducing data accuracy and disallowing the intercomparison of polarization lidar data between different systems. We introduce here the Stokes vector lidar equation, which is a full description of polarization in lidar from laser output to detector. We then interpret this theoretical description in the context of forward polar decomposition of Mueller matrices where distinct polarization attributes of diattenuation, retardance, and depolarization are elucidated. This decomposition can be applied to scattering matrices, where volumes consisting of randomly oriented particles are strictly depolarizing, while oriented ice crystals can be diattenuating, retarding, and depolarizing. For instrument effects we provide a description of how different polarization attributes will impact lidar measurements. This includes coupling effects due to retarding and depolarization attributes of the receiver, which have no description in scalar representations of polarization lidar. We also describe how the effects of polarizance in the receiver can result in nonorthogonal polarization detection channels. This violates one of the most common assumptions in polarization lidar operation.

摘要

偏振测量在激光雷达云和气溶胶研究中几乎已变得不可或缺。尽管偏振在激光雷达中得到广泛应用,但其理论描述在准确性和完整性方面却存在很大差异。不完整的偏振激光雷达描述总是导致对散射体特性和仪器效应的解释不足,降低了数据准确性,并使得不同系统之间的偏振激光雷达数据无法进行相互比较。我们在此引入斯托克斯矢量激光雷达方程,它是对激光雷达中从激光输出到探测器的偏振的完整描述。然后,我们在穆勒矩阵的正向偏振分解背景下解释这一理论描述,其中阐明了二向色性、延迟和去偏振的不同偏振属性。这种分解可应用于散射矩阵,由随机取向粒子组成的体积是严格去偏振的,而取向冰晶可能具有二向色性、延迟性和去偏振性。对于仪器效应,我们描述了不同的偏振属性将如何影响激光雷达测量。这包括由于接收器的延迟和去偏振属性引起的耦合效应,而在偏振激光雷达的标量表示中没有对此进行描述。我们还描述了接收器中的偏振度效应如何导致非正交偏振检测通道。这违反了偏振激光雷达操作中最常见的假设之一。

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