A Multi-Linear Statistical Method for Discriminant Analysis of 2D Frontal Face Images

Author:

Thomaz Carlos Eduardo1,do Amaral Vagner1,Giraldi Gilson Antonio2,Kitani Edson Caoru3,Sato João Ricardo4,Gillies Duncan5

Affiliation:

1. Centro Universitário da FEI (FEI), Brazil

2. Laboratório Nacional de Computação Científica (LNCC), Brazil

3. Universidade de São Paulo (USP), Brazil

4. Universidade Federal do ABC (UFABC), Brazil

5. Imperial College London, UK

Abstract

This chapter describes a multi-linear discriminant method of constructing and quantifying statistically significant changes on human identity photographs. The approach is based on a general multivariate two-stage linear framework that addresses the small sample size problem in high-dimensional spaces. Starting with a 2D data set of frontal face images, the authors determine a most characteristic direction of change by organizing the data according to the patterns of interest. These experiments on publicly available face image sets show that the multi-linear approach does produce visually plausible results for gender, facial expression and aging facial changes in a simple and efficient way. The authors believe that such approach could be widely applied for modeling and reconstruction in face recognition and possibly in identifying subjects after a lapse of time.

Publisher

IGI Global

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