Efficient and Effective Gabor Feature Representation for Face Detection

نویسندگان

  • Yasuomi D. Sato
  • Yasutaka Kuriya
چکیده

We here propose improved version of elastic graph matching (EGM) as a face detector, called the multi-scale EGM (MS-EGM). In this improvement, Gabor wavelet-based pyramid reduces computational complexity for the feature representation often used in the conventional EGM, but preserving a critical amount of information about an image. The MS-EGM gives us higher detection performance than Viola-Jones object detection algorithm of the AdaBoost Haar-like feature cascade. We also show rapid detection speeds of the MS-EGM, comparable to the Viola-Jones method. We find fruitful benefits in the MS-EGM, in terms of topological feature representation for a face. Keywords—Face Detection, Gabor Wavelet Based Pyramid, Elastic Graph Matching, Topological Preservation, Redundancy of Computational Complexity.

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تاریخ انتشار 2012