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首页> 外文期刊>SIAM Journal on Control and Optimization >DUAL NONLINEAR FILTERS AND ENTROPY PRODUCTION
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DUAL NONLINEAR FILTERS AND ENTROPY PRODUCTION

机译:双非线性滤波器和熵产生

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This paper makes connections between nonlinear filtering and the entropic properties of Markov processes. It starts by developing information flow models for continuous-time, discretestate filtering problems, identifying rates of information supply and dissipation. Time reversal yields a dual filtering problem in which these flows are interchanged. The dual problem comprises a diffusion signal with nonlinear dynamics, and observations of the point process variety, but yields a finitedimensional nonlinear filter. The paper goes on to define an entropic time derivative for a general class of Markov processes and relates the entropic derivatives of the signal and filter to the rates of information supply and dissipation. This leads to the definition of a rate of interactive entropy production, which measures the time asymmetry of the interaction between the signal and filter. This asymmetry is of the same nature as that occurring in the theory of nonequilibrium statistical mechanics based on stochastic dynamics. In this context, the interaction between the signal and filter is nondissipative—a property intimately connected with the existence of a dual problem.
机译:本文将非线性滤波与马尔可夫过程的熵性质联系起来。它从开发用于连续时间,离散状态过滤问题的信息流模型开始,确定信息的供应和耗散率。时间倒转会产生双重过滤问题,其中这些流量会互换。对偶问题包括具有非线性动力学的扩散信号,以及对点过程变化的观察,但产生了有限维非线性滤波器。本文继续为一般的马尔可夫过程定义熵时间导数,并将信号和滤波器的熵导数与信息的供给和耗散率联系起来。这导致了交互式熵产生速率的定义,该速率测量了信号和滤波器之间相互作用的时间不对称性。这种不对称性与基于随机动力学的非平衡统计力学理论中的不对称性相同。在这种情况下,信号与滤波器之间的相互作用是无耗散的—与双重问题的存在密切相关的属性。

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