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CVPR
2009
IEEE

Implicit Elastic Matching with Random Projections for Pose-variant Face Recognition

14 years 11 months ago
Implicit Elastic Matching with Random Projections for Pose-variant Face Recognition
We present a new approach to robust pose-variant face recognition, which exhibits excellent generalization ability even across completely different datasets due to its weak dependence on data. Most face recognition algorithms assume that the face images are very well-aligned. This assumption is often violated in real-life face recognition tasks, in which face detection and rectification have to be performed automatically prior to recognition. Although great improvements have been made in face alignment recently, significant pose variations may still occur in the aligned faces. We propose a multiscale local descriptor-based face representation to mitigate this issue. First, discriminative local image descriptors are extracted from a dense set of multiscale image patches. The descriptors are expanded by their spatial locations. Each expanded descriptor is quantized by a set of random projection trees. The final face representation is a histogram of the quantized descripto...
John Wright (University of Illinois), Gang Hua (Mi
Added 05 May 2009
Updated 10 Dec 2009
Type Conference
Year 2009
Where CVPR
Authors John Wright (University of Illinois), Gang Hua (Microsoft Live Labs Research)
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