DocumentCode
3017537
Title
Real time feature point tracking with automatic model selection
Author
Ionita, Mircea C. ; Tresadern, Philip A. ; Cootes, Timothy F.
Author_Institution
Imaging Sci. & Biomed. Eng, Univ. of Manchester, Manchester, UK
fYear
2011
fDate
6-13 Nov. 2011
Firstpage
453
Lastpage
460
Abstract
We present an efficient and accurate algorithm for face tracking using a set of Active Appearance Models (AAMs). We observe that a single AAM, trained at a particular model resolution and a particular range of displacements, has a “sweet spot” - a range of displacements for which it is most accurate. A common approach to increasing the range of convergence is to use a multi-resolution model, or a sequence of AAMs trained on smaller and smaller displacements. However, during tracking it is inefficient to run the whole sequence at every frame. If there has been little movement since the previous frame, it is sufficient to only run one step of a single higher resolution AAM. In this paper we show that we can use a non-linear regressor to estimate the magnitude of the displacement from the optimal position in the current frame, and use this to select a model which has been tuned to work well at that displacement. This is significantly more efficient than running a complete sequence of models at every frame. We describe the method in detail and demonstrate its performance on several datasets.
Keywords
face recognition; feature extraction; image resolution; real-time systems; regression analysis; active appearance models; automatic model selection; face tracking; multiresolution model; nonlinear regressor; real time feature point tracking; sweet spot; Active appearance model; Adaptation models; Biological system modeling; Face; Shape; Tracking; Training;
fLanguage
English
Publisher
ieee
Conference_Titel
Computer Vision Workshops (ICCV Workshops), 2011 IEEE International Conference on
Conference_Location
Barcelona
Print_ISBN
978-1-4673-0062-9
Type
conf
DOI
10.1109/ICCVW.2011.6130276
Filename
6130276
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