Literature DB >> 18237995

Face recognition using kernel direct discriminant analysis algorithms.

Juwei Lu1, K N Plataniotis, A N Venetsanopoulos.   

Abstract

Techniques that can introduce low-dimensional feature representation with enhanced discriminatory power is of paramount importance in face recognition (FR) systems. It is well known that the distribution of face images, under a perceivable variation in viewpoint, illumination or facial expression, is highly nonlinear and complex. It is, therefore, not surprising that linear techniques, such as those based on principle component analysis (PCA) or linear discriminant analysis (LDA), cannot provide reliable and robust solutions to those FR problems with complex face variations. In this paper, we propose a kernel machine-based discriminant analysis method, which deals with the nonlinearity of the face patterns' distribution. The proposed method also effectively solves the so-called "small sample size" (SSS) problem, which exists in most FR tasks. The new algorithm has been tested, in terms of classification error rate performance, on the multiview UMIST face database. Results indicate that the proposed methodology is able to achieve excellent performance with only a very small set of features being used, and its error rate is approximately 34% and 48% of those of two other commonly used kernel FR approaches, the kernel-PCA (KPCA) and the generalized discriminant analysis (GDA), respectively.

Year:  2003        PMID: 18237995     DOI: 10.1109/TNN.2002.806629

Source DB:  PubMed          Journal:  IEEE Trans Neural Netw        ISSN: 1045-9227


  7 in total

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2.  Mammographic image based breast tissue classification with kernel self-optimized fisher discriminant for breast cancer diagnosis.

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Journal:  J Med Syst       Date:  2011-04-08       Impact factor: 4.460

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Review 4.  Face Recognition Systems: A Survey.

Authors:  Yassin Kortli; Maher Jridi; Ayman Al Falou; Mohamed Atri
Journal:  Sensors (Basel)       Date:  2020-01-07       Impact factor: 3.576

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Journal:  Front Aging Neurosci       Date:  2022-06-17       Impact factor: 5.702

6.  In-TFT-array-process micro defect inspection using nonlinear principal component analysis.

Authors:  Yi-Hung Liu; Chi-Kai Wang; Yung Ting; Wei-Zhi Lin; Zhi-Hao Kang; Ching-Shun Chen; Jih-Shang Hwang
Journal:  Int J Mol Sci       Date:  2009-11-20       Impact factor: 6.208

7.  A framework for grouping nanoparticles based on their measurable characteristics.

Authors:  Christie M Sayes; P Alex Smith; Ivan V Ivanov
Journal:  Int J Nanomedicine       Date:  2013-09-18
  7 in total

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