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基于QR分解和支持向量的伪逆LDA
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作者 吴秀清 范丽亚 《聊城大学学报(自然科学版)》 2011年第4期1-5,共5页
为了降低计算复杂性,本文提出了三种基于QR分解和支持向量的伪逆线性判别分析法.通过对UCI数据库中的Wine和Iris数据进行对比实验,验证了本文所提算法对分类问题的有效性和实用性.
关键词 伪逆lda qr分解 支持向量 错分率
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Face Recognition Using LDA with Wavelet Transform Approach
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作者 Neeta Nain Akshay Kumar +3 位作者 Amlesh Kumar Mohapatra Ashok Kumar Ratan Das Nemi Chand Singh 《Computer Technology and Application》 2011年第5期401-405,共5页
Linear Discriminant Analysis (LDA) is one of the principal techniques used in face recognition systems. LDA is well-known scheme for feature extraction and dimension reduction. It provides improved performance over ... Linear Discriminant Analysis (LDA) is one of the principal techniques used in face recognition systems. 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 paper also has proposed a development over classical LDA, i.e., LDA using wavelets transform approach that enhances performance as regards 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. 展开更多
关键词 Face recognition principal component analysis (PCA) linear discriminant analysis lda relevance weighted lda (RW-lda lda/qr wavelet transform sub-bands.
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