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Two-dimensional pca: a new approach to appearance-based face representation and recognition

Jian YangDavid ZhangAlejandro F. FrangiJingyu Yang

Abstract

In this paper, a new technique coined two-dimensional principal component analysis (2DPCA) is developed for image representation. As opposed to PCA, 2DPCA is based on 2D image matrices rather than 1D vectors so the image matrix does not need to be transformed into a vector prior to feature extraction. Instead, an image covariance matrix is constructed directly using the original image matrices, and its eigenvectors are derived for image feature extraction. To test 2DPCA and evaluate its performance, a series of experiments were performed on three face image databases: ORL, AR, and Yale face databases. The recognition rate across all trials was higher using 2DPCA than PCA. The experimental results also indicated that the extraction of image features is computationally more efficient using 2DPCA than PCA.

Face and Expression RecognitionImage Retrieval and Classification TechniquesRemote-Sensing Image ClassificationPrincipal component analysisPattern recognition (psychology)Artificial intelligenceFeature extractionFacial recognition systemComputer scienceFace (sociological concept)Image (mathematics)Eigenvalues and eigenvectorsEigenface

MeSH terms

AlgorithmsArtificial IntelligenceComputer SimulationFaceFemaleHumansImage EnhancementImage Interpretation, Computer-AssistedMaleNumerical Analysis, Computer-AssistedPattern Recognition, AutomatedSensitivity and SpecificitySignal Processing, Computer-AssistedSubtraction TechniqueReproducibility of Results

Funding

  • National Science Foundation
  • National Natural Science Foundation of China
  • Hong Kong Polytechnic University
  • Ministerio de Ciencia y Tecnología
  • Universidad de Zaragoza
Citations
3,576
FWCI
91.57
field-weighted impact
References
22
Percentile
100%
vs. same field & year
Citations per year
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References
Face recognition by elastic bunch graph matching
IEEE Transactions on Pattern Analysis and Machine Intelligence · 1997 · 2,883 citations
Eigenfaces vs. Fisherfaces: recognition using class specific linear projection
IEEE Transactions on Pattern Analysis and Machine Intelligence · 1997 · 11,705 citations
Eigenfaces for Recognition
Journal of Cognitive Neuroscience · 1991 · 13,711 citations
Face recognition by independent component analysis
IEEE Transactions on Neural Networks · 2002 · 1,928 citations
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