Composite support vector machines for detection of faces across views and pose estimation

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Support vector machines (SVMs) have shown great potential for learning classification functions that can be applied to object recognition. In this work, we extend SVMs to model the appearance of human faces which undergo non-linear change across multiple views. The approach uses inherent factors in the nature of the input images and the SVM classification algorithm to perform both multi-view face detection and pose estimation.

论文关键词:Support vector machine,Face detection,Pose estimation

论文评审过程:Received 16 October 2000, Accepted 18 December 2001, Available online 3 February 2002.

论文官网地址:https://doi.org/10.1016/S0262-8856(02)00008-2