TokyoTech + Canon at TRECVID 2011

نویسندگان

  • Nakamasa Inoue
  • Yusuke Kamishima
  • Toshiya Wada
  • Koichi Shinoda
  • Shunsuke Sato
چکیده

The aim of this section is to develop a high-performance semantic indexing system using Gaussian mixture model (GMM) supervectors and tree-structured GMMs [1, 2]. GMM spervectors corresponding to six types of audio and visual features are extracted from video shots by using tree-structured GMMs. The computational cost of maximum a posteriori (MAP) adaptation for estimating GMM parameters are reduced by tree-structured GMMs by keeping accuracy at high levels. Our best result was 17.3 % in terms of Mean InfAP, which was ranked 1st over all semantic indexing runs in the full task.

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تاریخ انتشار 2012