Binary Pattern Analysis for 3D Facial Action Unit Detection

نویسندگان

  • Georgia Sandbach
  • Stefanos Zafeiriou
  • Maja Pantic
چکیده

In this paper we propose new binary pattern-based features for use in the problem of 3D facial action unit (AU) detection. Two representations of 3D facial geometries are employed, the depth map and the Azimuthal Projection Distance Image (APDI). To these the traditional Local Binary Pattern is applied, along with Local Phase Quantisation, Gabor filters andMonogenic filters, followed by the binary pattern feature extraction method. Feature vectors are formed for each feature type through concatenation of histograms formed from the resulting binary numbers. Feature selection is then performed using a two-stage GentleBoost approach. Finally, we apply Support Vector Machines as classifiers for detection of each AU. This system is tested in two ways. First we perform 10-fold cross-validation on the Bosphorus database, and then we perform the cross-database testing by training on this database and then testing on apex frames from the D3DFACS database, achieving promising results in both.

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تاریخ انتشار 2012