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Derivation of separability measures based on central complex Gaussian and Wishart distributions

机译:基于中心高斯和Wishart分布的可分离性度量的推导

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In this paper the Bhattacharyya distance and the divergence are derived as two different measures of target class separability based on the central complex multivariate Gaussian and Wishart distributions with unequal covariance matrices. The derived Bhattacharyya distances for the two distributions, respectively, differ only in terms of a simple multiplier, i.e. the number of degrees of freedom (also known as number of looks in polarimetric synthetic aperture radar data). The same aspect was observed for the divergence. Furthermore, the Bhattacharyya distance was found to be proportional to the Bartlett distance, while the divergence is proportional to the symmetrized normalized log-likelihood distance. The use of the Bhattacharyya distance and the divergence as separability measures of target classes was demonstrated by using NASA/JPL AIRSAR POLSAR data and was benchmarked against the Euclidean distance. From the results, both the Bhattacharyya distance and the divergence were found to perform consistently in measuring the separability of target classes.
机译:在本文中,Bhattacharyya距离和分歧是基于中央复杂多变量高斯和Wishart分布的基于不等协方差矩阵的两种不同的目标级别可分离措施。两个分布的衍生Bhattacharyya距离仅在一个简单的乘法器方面不同,即自由度的数量(也称为Polariemetric合成孔径数据中的外观数量)。观察到相同的方面用于分歧。此外,发现BHATTACHARYYA距离与BARTLETT距离成比例,而发散与对称的归一化对数似然距离成比例。通过使用NASA / JPL Airsar Polsar数据证明了Bhattacharyya距离和分歧作为目标类别的可分离性测量,并与欧几里德距离为基准。从结果中,发现Bhattacharyya距离和分歧都是一致地测量目标类别的可分离性。

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