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Dynamic weighted discrimination power analysis in DCT domain for face and palmprint recognition

机译:DCT域中的动态加权鉴别能力分析,用于人脸和掌纹识别

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Discrimination power analysis (DPA) is a statistical analysis combining discrimination concept with discrete cosine transform coefficients (DCTCs) properties. Unfortunately there is not a uniform and effective criterion to optimize the shape and size of premasking window on which the effect of DPA excessively relies. Proper premasking is an auxiliary process to select the feature coefficients that have more discrimination power (DP). Dynamic weighted DPA (DWDPA) is proposed in this paper to enhance the DP of the selected DCTCs without premasking window, in other words, it does not need to optimize the shape and size of premasking window. The DCTCs are adaptively selected according to their discrimination power values (DPVs). More DCTCs with higher DP are preserved. The selected coefficients are normalized and dynamic weighted according to their DPVs. Normalization assures that the DCTCs with large absolute value don't destroy the DP of the other DCTCs that have less absolute value but high DPVs. Dynamic weighting gives larger weights to the DCTCs with larger DPVs which optimizes and enhances the recognition performance. The experimental results on ORL, Yale and PolyU databases show that DWDPA outperforms DPA obviously.
机译:判别功率分析(DPA)是一种与离散余弦变换系数(DCTCs)属性组合鉴别概念的统计分析。遗憾的是,没有统一和有效的标准,可以优化DPA过度依赖的效果的最震动窗口的形状和尺寸。正确的预追加措施是辅助过程,用于选择具有更多辨别力(DP)的特征系数。在本文中提出了动态加权DPA(DWDPA),以增强所选DCTC的DP而无需返回窗口,换句话说,不需要优化最初的窗口的形状和大小。根据其辨别功率值(DPV)自适应地选择DCTC。保留具有更高DP的更多DCTC。根据其DPV,所选择的系数是归一化的和动态加权。归一化确保具有大绝对值的DCTS不会破坏具有较低绝对值但高DPV的其他DCT的DP。动态加权为DCTC提供更大的重量,具有较大的DPV,可优化和增强识别性能。 ORL,耶鲁和Polyu数据库的实验结果表明,DWDPA显然优于DPA。

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