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Nonequilibrium diffusions for density estimation on path spaces

机译:路径空间上密度估计不合格扩散

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摘要

Many machine perception problems of interest involve continuous valued quantities with continuous time dynamics, e.g., visual tracking. Hidden Markov models, flexible highly parameterized density estimation architectures, are recognized as the state of the art for difficult machine perception problems such as speech recognition. However, the standard HMM arcitecture uses discrete time dynamics and discrete valued hidden states.
机译:许多机器感兴趣的问题涉及具有连续时间动态的连续值量,例如,视觉跟踪。隐藏的马尔可夫模型,灵活的高度参数化密度估计架构被认可为诸如语音识别等困难机器感知问题的领域。但是,标准嗯arcitecture使用离散时间动态和离散值的隐藏状态。

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