Statistical models of face images — improving specificity

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Model-based approaches to the interpretation of face images have proved very successful. We have previously described statistically based models of face shape and grey-level appearance and shown how they can be used to perform various coding and interpretation tasks. In the paper we describe improved methods of modelling which couple shape and grey-level information more directly than our existing methods, isolate the changes in appearance due to different sources of variability (person, expression, pose, lighting) and deal with non-linear shape variation. We show that the new methods are better suited to interpretation and tracking tasks.

论文关键词:Face image interpretation,Model-based approach

论文评审过程:Received 18 July 1997, Accepted 23 September 1997, Available online 27 October 1999.

论文官网地址:https://doi.org/10.1016/S0262-8856(97)00069-3