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Single-sample-per-person-based face recognition using fast Discriminative Multi-manifold Analysis

机译:基于单人的单人的面部识别,使用快速辨别多流形分析

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This paper presents a single sample per person (SSPP)-based face recognition method. Based on the Discriminative Multi-manifold Analysis (DMMA), we propose an accelerative face recognition method which consists of three modules. First, for one person one training image sample, we use a modified of K-means method to cluster two groups of people. Second, we divide the face images into non-overlapping local patches and apply DMMA. Third, we repeat the previous two steps to obtain the binary tree projection matrix of fast DMMA. In the experiments, we test the AR database and FERET database to verify the effectiveness of SSPP-based fast DMMA face recognition process in both accuracy and speed.
机译:本文呈现每人的单个样本(SSPP)的面部识别方法。基于鉴别的多流形分析(DMMA),我们提出了一种加速面识别方法,该方法由三个模块组成。首先,对于一个人进行一个训练图像样本,我们使用修改的K-means方法来聚集两组人。其次,我们将面部图像划分为非重叠的本地补丁并应用DMMA。第三,我们重复前两个步骤以获得快速DMMA的二叉树投影矩阵。在实验中,我们测试AR数据库和Furet数据库,以验证SSPP的快速DMMA面部识别过程的精度和速度。

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