首页> 外文会议>Workshop on Hyperspectral Image and Signal Processing >FORWARD MODELING AND ATMOSPHERIC COMPENSATION IN HYPERSPECTRAL DATA: EXPERIMENTAL ANALYSIS FROM A TARGET DETECTION PERSPECTIVE
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FORWARD MODELING AND ATMOSPHERIC COMPENSATION IN HYPERSPECTRAL DATA: EXPERIMENTAL ANALYSIS FROM A TARGET DETECTION PERSPECTIVE

机译:高光谱数据中的前进建模和大气补偿:目标检测视角的实验分析

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摘要

Taking into account atmospheric effects is crucial in target detection of airborne/satellite hyperspectral images. In regard to this, two physics-based approaches to atmospheric radiative transfer modeling are considered here: Atmospheric Compensation (AC) and Forward Modeling (FM). An experimental analysis is presented that encompasses target detection both relying upon an atmospherically compensated reflectance image and by generating predicted radiance target spaces through a forward modeling approach. Real hyperspectral imagery that embodies a very challenging, cluttered, mixed pixel detection problem is used to compare AC and FM approaches from an operational target detection perspective. On this data, detection in the radiance domain through FM has proven to be as effective as the standard AC plus reflectance domain processing. Experiments have also highlighted several aspects of FM approach (e.g. its intrinsic simplicity, flexibility, and applicability) that should be considered when performing target detection, especially for targets affected by high variability.
机译:考虑到大气效应对于空气传播/卫星高光谱图像的目标检测至关重要。在此方面,这里考虑了两种基于物理的大气辐射转移建模的方法:大气补偿(AC)和正向建模(FM)。提出了一种实验分析,其包括依赖于大气补偿的反射图像的目标检测,并通过前向建模方法产生预测的辐射靶空间。实际高光谱图像,其体现了非常具有挑战性,杂乱的混合像素检测问题,用于将AC和FM方法与操作目标检测视角进行比较。在此数据的情况下,通过FM的RADIACE域中的检测已被证明是标准交流直流域处理的有效。实验还强调了FM方法的几个方面(例如,其内在的简单性,灵活性和适用性)在执行目标检测时应该考虑,特别是对于受高可变性影响的目标。

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