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  • 标题:Mean Field Theory for Sigmoid Belief Networks
  • 本地全文:下载
  • 作者:L. K. Saul ; T. Jaakkola ; M. I. Jordan
  • 期刊名称:Journal of Artificial Intelligence Research
  • 印刷版ISSN:1076-9757
  • 出版年度:1996
  • 卷号:4
  • 页码:61-76
  • 出版社:American Association of Artificial
  • 摘要:We develop a mean field theory for sigmoid belief networks based on ideas from statistical mechanics. Our mean field theory provides a tractable approximation to the true probability distribution in these networks; it also yields a lower bound on the likelihood of evidence. We demonstrate the utility of this framework on a benchmark problem in statistical pattern recognition---the classification of handwritten digits.
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