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COMPARISON OF RX-BASED ANOMALY DETECTORS ON SYNTHETIC AND REAL HYPERSPECTRAL DATA

机译:基于RX的异常探测器对合成和实际高光谱数据的比较

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Anomaly detection refers to detecting the deviations from the normal background behavior without any prior information about the target or the background. For hyperspectral image analysis, Reed-Xiaoli (RX) algorithm is arguably the most popular anomaly detector. It models the background as a multidimensional Gaussian distribution and computes how much a test vector is deviating from the background model. Over the years, many versions of RX have been developed and compared on VNIR or SWIR data, but longwave-infrared (LWIR) data comparisons are very few. In this paper, a comprehensive comparison of six different anomaly detectors, namely the global RX, local RX, dual window RX, subspace RX, kernel RX and the global RX combined with a uniform target detector, have been presented. The comparisons have been made on real LWIR hyperspectral data and synthetic data with varying noise levels and target sizes. Several factors to consider such as parameter selection, resilience to noise, effect of window size, computational complexity have been discussed and the detection performance have been presented on receiver operating characteristic curves.
机译:异常检测是指检测来自正常背景行为的偏差,而没有关于目标或背景的任何先前信息。对于高光谱图像分析,Reed-Xiaoli(RX)算法可以是最受欢迎的异常探测器。它模拟了背景作为多维高斯分布的背景,并计算测试矢量偏离背景模型。多年来,在VNIR或SWIR数据上开发了许多版本的RX,但长波 - 红外线(LWIR)数据比较很少。本文介绍了六种不同异常探测器的全面比较,即全局RX,局部RX,双窗Rx,子空间Rx,内核Rx和全局Rx与统一目标检测器组合的全局rx。已经在实际LWIR高光谱数据和合成数据上进行了比较,具有不同的噪声水平和目标尺寸。考虑诸如参数选择,噪声的弹性,窗口大小的效果,已经讨论了计算复杂性的几个因素,并且已经介绍了接收器操作特性曲线的检测性能。

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