高光谱波段杂波复杂度分析

O. Fadiran, L. Kaplan
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引用次数: 4

摘要

这项工作研究了使用杂波复杂性测量来选择波段的探测器在前视高光谱图像立方体上工作。通过杂波复杂性,我们指的是统计图像特征的集合,这些特征预测了检测和/或识别图像中目标物体的“困难程度”。研究表明,杂波复杂度与单波段自动目标识别(ATR)性能有很好的相关性。我们还展示了基于杂波复杂度选择波段时多波段ATR的性能。为了使这种ATR性能基线化,我们考虑了统一频带排序策略和由穷举搜索确定的“最优”排序策略。我们的研究结果表明,与统一排序策略相比,根据杂波复杂度排序可以提高ATR性能。然而,这种改进的性能不如最优排序所获得的性能好。
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Clutter complexity analysis of hyper-spectral bands
This work investigates the use of a clutter complexity measure for the selection of bands for a detector operating over forward looking hyper-spectral image cubes. By clutter complexity, we mean an aggregation of statistical image features that predict the "degree of difficulty" to detect and/or identify a target object in an image. We show that clutter complexity correlates well with single-band automatic target recognition (ATR) performance. We also show the performance of the multi-band ATR when the bands are selected based on clutter complexity. To baseline this ATR performance, we consider a uniform band ordering strategy and an "optimal" ordering strategy determined by an exhaustive search. Our results show that the ordering by clutter complexity results in an improvement of the ATR performance when compared to the uniform ordering strategy. This improved performance is however not as good as the performance obtained for the optimal ordering.
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