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Tractable Inference for Complex Stochastic Processes

机译:复杂随机过程的易诊推理

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The monitoring and control of any dynamic system depends crucially on the ability to reason about its current status and its future trajectory. In the case of a stochastic system, these tasks typically involve the use of a belief state-a probability distribution over the state of the process at a given point in time. Unfortunately, the state spaces of complex processes are very large, making an explicit representation of a belief state intractable. Even in dynamic Bayesian networks (DBNs), where the process itself can be represented compactly, the representation of the belief state is intractable. We investigate the idea of maintaining a compact approximation to the true belief state, and analyze the conditions under which the errors due to the approximations taken over the lifetime of the process do not accumulate to make our answers completely irrelevant. We show that the error in a belief state contracts exponentially as the process evolves. Thus, even with multiple approximations, the error in our process remains bounded indefinitely. We show how the additional structure of a DBN can be used to design our approximation scheme, improving its performance significantly. We demonstrate the applicability of our ideas in the context of a monitoring task, showing that orders of magnitude faster inference can be achieved with only a small degradation in accuracy.
机译:任何动态系统的监控和控制都认为是对其当前状态及其未来轨迹的推理的能力。在随机系统的情况下,这些任务通常涉及使用信仰状态 - 在给定时间点的过程中的概率分布。不幸的是,复杂流程的状态空间非常大,表明了一个明确的信仰状态棘手。即使在动态贝叶斯网络(DBNS)中,如果过程本身可以紧凑地表示,则信仰状态的表示是棘手的。我们调查了对真正信仰状态保持紧凑近似的想法,并分析了由于在过程的寿命上采取的近似而导致的误差不会累积,以使我们的答案完全无关紧要。我们表明,随着过程的发展,相信状态的误差是指数级的。因此,即使具有多个近似,我们过程中的错误也无限期地保持界定。我们展示了DBN的额外结构如何用于设计近似方案,显着提高其性能。我们在监测任务的背景下展示了我们的想法的适用性,表明可以通过精度下降得分较快推断的数量级。

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