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An evaluation of fusion algorithms using image fusion metrics and human identification performance

机译:使用图像融合指标和人类识别性能评估融合算法

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摘要

The performance of image fusion algorithms is evaluated using image fusion quality metrics and observer performance in identification perception experiments. Image Intensified (I~2) and LWIR images are used as the inputs to the fusion algorithms. The test subjects are tasked to identify potentially threatening handheld objects in both the original and fused images. The metrics used for evaluation are mutual information (MI), fusion quality index (FQI), weighted fusion quality index (WFQI), and edge-dependent fusion quality index (EDFQI). Some of the fusion algorithms under consideration are based on Peter Burt's Laplacian Pyramid, Toet's Ratio of Low Pass (RoLP or contrast ratio), and Waxman's Opponent Processing. Also considered in this paper are pixel averaging, superposition, multi-scale decomposition, and shift invariant discrete wavelet transform (SIDWT). The fusion algorithms are compared using human performance in an object-identification perception experiment. The observer responses are then compared to the image fusion quality metrics to determine the amount of correlation, if any. The results of the perception test indicated that the opponent processing and ratio of contrast algorithms yielded the greatest observer performance on average. Task difficulty (V_(50)) associated with the I~2 and LWIR imagery for each fusion algorithm is also reported.
机译:在识别感知实验中,使用图像融合质量指标和观察者性能来评估图像融合算法的性能。图像增强(I〜2)和LWIR图像用作融合算法的输入。测试对象的任务是在原始图像和融合图像中识别潜在威胁的手持对象。用于评估的指标是互信息(MI),融合质量指数(FQI),加权融合质量指数(WFQI)和边缘相关的融合质量指数(EDFQI)。正在考虑的某些融合算法是基于Peter Burt的拉普拉斯金字塔,Toet的低通比率(RoLP或对比度)和Waxman的对手处理机制。本文还考虑了像素平均,叠加,多尺度分解和位移不变离散小波变换(SIDWT)。在对象识别感知实验中,使用人类性能比较了融合算法。然后将观察者的响应与图像融合质量度量进行比较,以确定相关程度(如果有)。知觉测试的结果表明,对手的处理和对比度算法的比率平均产生了最大的观察者性能。还报告了与每种融合算法的I〜2和LWIR图像相关的任务难度(V_(50))。

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