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Probability Density and CFAR Threshold Estimation for Hyperspectral Imaging

机译:高光谱成像的概率密度和CFaR阈值估计

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The work reported here shows the proof of principle (using a small data set) for a suite of algorithms designed to estimate the probability density function of hyperspectral background data and compute the appropriate Constant False Alarm Rate (CFAR) matched filter decision threshold for a chemical plume detector. Future work will provide a thorough demonstration of the algorithms and their performance with a large data set.

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