Independent Component Analysis and Support Vector Machine forface feature extraction
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We propose Independent Component Analysis representation and
Support Vector Machine classification to extract facial
features in a face detection /localization context. The goal is
to find a better space where project the data in order to build
ten different face-feature classifiers that are robust to
illumination variations and bad environment conditions. The
method was tested on the BANCA database, in different
scenarios: controlled conditions, degraded conditions and
adverse conditions.