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Automatic recognition and analysis of human faces and facial expression by LDA using wavelet transform

机译:LDA使用小波变换自动识别和分析LDA

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Linear Discriminant Analysis (LDA) is one of the principal techniques used in face recognition systems. The Linear Discriminant Analysis (LDA) is well-known scheme for feature extraction and dimension reduction. It provides improved performance over the standard Principal Component Analysis (PCA) method of face recognition by introducing the concept of classes and distance between classes. This paper provides an overview of PCA, the various variants of LDA and their basic drawbacks. The proposed method includes a development over classical LDA (i.e. LDA using wavelets transform approach) that enhances performance such as accuracy and time complexity. Experiments on ORL face database clearly demonstrate this and the graphical comparison of the algorithms clearly showcases the improved recognition rate in case of the proposed algorithm.
机译:线性判别分析(LDA)是人脸识别系统中使用的主要技术之一。线性判别分析(LDA)是具有特征提取和尺寸减少的众所周知的方案。它通过引入类别的概念和类之间的概念来提供对面部识别的标准主成分分析(PCA)方法的改进性能。本文概述了PCA,LDA的各种变体及其基本缺点。该方法包括在经典LDA(即,使用小波变换方法的LDA)的开发,其增强了诸如精度和时间复杂度的性能。 Orl面部数据库的实验清楚地证明了这一点,并且算法的图形比较清楚地展示了所提出的算法的情况下的改进的识别率。

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