Publication | Closed Access
Face recognition using eigenfaces
5.2K
Citations
8
References
2002
Year
Unknown Venue
EngineeringFeature DetectionBiometricsFace RecognitionFace DetectionFacial Recognition SystemImage AnalysisPattern RecognitionImage-based ModelingMachine Vision'Face SpaceComputer ScienceFeature SpaceComputer VisionFacial Expression RecognitionHuman IdentificationEye TrackingFace SpacePattern Recognition Application
An approach to the detection and identification of human faces is presented, and a working, near-real-time face recognition system which tracks a subject's head and then recognizes the person by comparing characteristics of the face to those of known individuals is described. This approach treats face recognition as a two-dimensional recognition problem, taking advantage of the fact that faces are normally upright and thus may be described by a small set of 2-D characteristic views. Face images are projected onto a feature space ('face space') that best encodes the variation among known face images. The face space is defined by the 'eigenfaces', which are the eigenvectors of the set of faces; they do not necessarily correspond to isolated features such as eyes, ears, and noses. The framework provides the ability to learn to recognize new faces in an unsupervised manner.< <ETX xmlns:mml="http://www.w3.org/1998/Math/MathML" xmlns:xlink="http://www.w3.org/1999/xlink">></ETX>
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