Please use this identifier to cite or link to this item: http://hdl.handle.net/1893/285
Appears in Collections:Psychology Journal Articles
Peer Review Status: Refereed
Title: A comparison of two computer-based face identification systems with human perceptions of faces
Author(s): Hancock, Peter J B
Bruce, Vicki
Burton, A Mike
Keywords: PCA
similarity
distinctiveness
face recognition
Face perception
Facial recognition (Psychology) Graphic methods
Face recognition Computer simulation Paired comparisons
Issue Date: 1998
Date Deposited: 5-Mar-2008
Citation: Hancock PJB, Bruce V & Burton AM (1998) A comparison of two computer-based face identification systems with human perceptions of faces. Vision Research, 38 (15-16), pp. 2277-2288. https://doi.org/10.1016/S0042-6989%2897%2900439-2
Abstract: The performance of two different computer systems for representing faces was compared with human ratings of similarity and distinctiveness, and human memory performance, on a specific set of face images. The systems compared were a graphmatching system (e.g. Lades et al., 1993) and coding based on Principal Components Analysis (PCA) of image pixels (e.g. Turk & Pentland, 1991). Replicating other work, the PCA-based system produced very much better performance at recognising faces, and higher correlations with human performance with the same images, when the images were initially standardised using a morphing procedure and separate analysis of "shape" and "shape-free" components then combined. Both the graph-matching and (shape + shape-free) PCA systems were equally able to recognise faces shown with changed expressions, both provided reasonable correlations with human ratings and memory data, and there were also correlations between the facial similarities recorded by each of the computer models. However, comparisons with human similarity ratings of faces with and without the hair visible, and prediction of memory performance with and without alteration in face expressions, suggested that the graph-matching system was better at capturing aspects of the appearance of the face, while the PCA-based system seemed better at capturing aspects of the appearance of specific images of faces.
DOI Link: 10.1016/S0042-6989(97)00439-2
Rights: Published in Vision research. Copyright : Elsevier.

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