基于模态PCA的多视角光照与姿态不变人脸识别

P. Sankaran, V. Asari
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引用次数: 19

摘要

提出了一种改进的模块化PCA人脸识别方法。提出的改进旨在提高模块化PCA对光照和面部表情变化较大的人脸图像的识别率。眼睛是面部最不变的区域之一。考虑该区域的一个子图像。该区域的权重向量被附加到现有的权重向量上,用于模块化主成分分析。在不同姿态、光照和表情条件下,利用标准人脸数据库对改进后的方法、原始方法和主成分分析方法的精度进行了评估。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A multi-view approach on modular PCA for illumination and pose invariant face recognition
A modified approach on modular PCA for face recognition is presented in this paper. The proposed changes aim to improve the recognition rates for modular PCA for face images with large variation in light and facial expression. The eyes form one of the most invariant regions on the face. A sub-image from this region is considered. Weight vectors from this region are appended to the existing weight vector for modular PCA. The accuracies for the modified method, the original method and PCA method are evaluated under conditions of varying pose, illumination and expressions using standard face databases.
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