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Performance of the proposed stray light correction algorithm for the Thermal Infrared Sensor (TIRS) onboard Landsat 8

机译:用于热红外传感器(TIRS)车载LANDSAT 8的杂散光校正算法的性能

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Imagery from the Landsat 8 Thermal Infrared Sensor (TIRS) have exhibited scene-dependent non-uniform banding and absolute calibration artifacts since the instrument began operation in 2013. These artifacts have been attributed to a stray light effect in which radiance from outside the nominal field-of-view of the instrument enters the optical system and adds a non-uniform signal to the focal plane detectors. A major effort was launched to characterize the stray light sources and derive an operational software correction that could easily be applied to the ground processing system. The proposed solution relies on a regression analysis in which TIRS scene imagery is used in combination with a detailed optical model to calculate the extra stray light signal on the detectors. The predicted signal is then subtracted from the scene data to remove the stray light artifacts. The resulting imagery from the correction algorithm displays a vast improvement in both banding and absolute error over the current TIRS product. The algorithm has the added benefit of being able to run in 'real time' with no additional data needed. Comparisons to MODIS thermal imagery have demonstrated high performance for scenes all over the world and over different material types and temperatures. A summary of these validation studies will be discussed here.
机译:来自Landsat 8热红外传感器(TIRS)的图像表现出现场依赖性的非均匀条带和绝对校准伪像,因为仪器于2013年开始运行。这些工件归因于杂散的光线效应,其中来自标称场外的光辐射-of-internape的视图进入光学系统并向焦平面检测器添加非均匀信号。推出了一项重大努力,以表征杂散光源,并导出可以容易地应用于地面处理系统的操作软件校正。所提出的解决方案依赖于回归分析,其中TIRS场景图像与详细的光学模型结合使用以计算探测器上的额外杂散光信号。然后从场景数据中减去预测信号以去除杂散光伪像。来自校正算法的结果图像显示当前TIRS产品中的条带和绝对误差的大量改进。该算法具有能够在“实时”中运行的额外福利,没有所需的额外数据。 Modis热图像的比较已经表现出全世界的场景以及不同的材料类型和温度的高性能。这里将讨论这些验证研究的摘要。

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