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Face recognition: A multivariate mutual information based approach

机译:面部识别:基于多变量的互信息方法

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A method based on multivariate mutual information (MMI) is proposed for face recognition. Unlike the existing frameworks, the proposed method is not hindered by rigorous computation for feature extraction and learning spaces. The proposed method uses information-theoretic framework for face recognition. The training set is used to estimate the underlying joint and marginal densities, which are utilized to calculate the mutual information. The mutual information for each pixel value is used to highlight the regions, that correspond to maximum information that are used for face recognition process. Performance of the proposed method is evaluated on two image datasets. The recognition performance of the proposed method is also compared with existing principal component analysis (PCA) based face recognition algorithms.
机译:提出了一种基于多变量互相信息(MMI)的方法,用于面部识别。与现有框架不同,所提出的方法不受特征提取和学习空间的严格计算阻碍。该方法使用信息 - 理论框架进行人脸识别。培训集用于估计利用来计算互信息的基础关节和边际密度。每个像素值的互信息用于突出显示该区域,该区域对应于用于面部识别处理的最大信息。在两个图像数据集上评估所提出的方法的性能。还将所提出的方法的识别性能与基于基于主成分分析(PCA)的面部识别算法进行比较。

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