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Image Processing Methods to Compensate for IFOV Errors in Microgrid Imaging Polarimeters

机译:补偿微网格成像旋光仪中IFOV误差的图像处理方法

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Long-wave infrared imaging Stokes vector polarimeters are used in many remote sensing applications. Imaging polarimeters require that several measurements be made under optically different conditions in order to estimate the polarization signature at a given scene point. This multiple-measurement requirement introduces error in the signature estimates, and the errors differ depending upon the type of measurement scheme used. Here, we investigate a LWIR linear microgrid polarimeter. This type of instrument consists of a mosaic of micro-polarizers at different orientations that are masked directly onto a focal plane array sensor. In this scheme, each polarization measurement is acquired spatially and hence each is made at a different point in the scene. This is a significant source of error, as it violates the requirement that each polarization measurement have the same instantaneous field-of-view (IFOV). In this paper, we first study the amount of error introduced by the IFOV handicap in microgrid instruments. We then proceed to investigate means for mitigating the effects of these errors to improve the quality of polarimetric imagery. In particular, we examine different interpolation schemes and gauge their performance. These studies are completed through the use of both real instrumental and modeled data.
机译:长波红外成像斯托克斯矢量旋光仪用于许多遥感应用中。成像偏振仪需要在光学上不同的条件下进行几次测量,以便估算给定场景点的偏振特征。该多次测量要求在签名估计中引入了误差,并且误差根据所使用的测量方案的类型而不同。在这里,我们研究了LWIR线性微电网旋光仪。这种类型的仪器由不同方向的微偏振器镶嵌构成,这些镶嵌器直接掩盖在焦平面阵列传感器上。在这种方案中,每个偏振测量值都是在空间上获取的,因此,每个偏振测量值都是在场景中的不同点进行的。这是一个重要的误差源,因为它违反了每个偏振测量必须具有相同的瞬时视场(IFOV)的要求。在本文中,我们首先研究了IFOV障碍在微电网仪器中引入的误差量。然后,我们将继续研究减轻这些错误影响的方法,以提高偏振成像的质量。特别是,我们研究了不同的插值方案并评估了它们的性能。这些研究是通过使用实际的仪器数据和建模数据来完成的。

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