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Temporal logic control of general Markov decision processes by approximate policy refinement

机译:通过近似政策细化的马尔可夫决策过程的时间逻辑控制

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The formal verification and controller synthesis for general Markov decision processes (gMDPs) that evolve over uncountable state spaces are computationally hard and thus generally rely on the use of approximate abstractions. In this paper, we contribute to the state of the art of control synthesis for temporal logic properties by computing and quantifying a less conservative gridding of the continuous state space of linear stochastic dynamic systems and by giving a new approach for control synthesis and verification that is robust to the incurred approximation errors. The approximation errors are expressed as both deviations in the outputs of the gMDPs and in the probabilistic transitions.
机译:正式验证和控制器综合用于逐一的马尔可夫决策过程(GMDP),其演变在不可数状态空间上的不可数状态空间是艰难的,因此通常依赖于使用近似抽象。 在本文中,我们通过计算和量化线性随机动态系统的连续状态空间的较少保守网格来促进用于时间逻辑特性的控制合成的最新状态,并通过给予控制合成和验证的新方法 鲁棒到发生的近似误差。 近似误差表示为GMDP输出和概率转换中的偏差。

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