A feature space for face image processing

Qing Song, John A. Robinson · 2002

We propose criteria for a feature space for face image processing and a method for generating such a space. Beginning with many input dimensions, including deformation vectors (obtained through optical flow analysis between an input image and a neutral template) and deformation residues, we apply principal components analysis and Fisher's classification criterion to derive a feature space. We demonstrate classification in two important tasks-face detection and expression analysis-in each case using only one linear discriminant, thereby demonstrating that the feature space fulfils a restricted version of the criteria.

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