Model Repair for Markov Decision Processes

Taolue Chen, E. M. Hahn, Tingting Han, M. Kwiatkowska, Hongyang Qu, Lijun Zhang
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引用次数: 73

Abstract

Markov decision processes (MDPs) are often used for modelling distributed systems with probabilistic failure or randomisation. We consider the problem of model repair for MDPs defined as follows: if the MDP fails to satisfy a property, we aim to find new values for the transition probabilities so that the property is guaranteed to hold, while at the same time the cost of repair is minimised. Because solving the MDP repair problem exactly is infeasible, in this paper we focus on approximate solution methods. We first formulate a region-based approach, which yields an interval in which the minimal repair cost is contained. As an alternative, we also consider sampling based approaches, which are faster but unable to provide lower bounds on the repair cost. We have integrated both methods into the probabilistic model checker PRISM and demonstrated their usefulness in practice using a computer virus case study.
马尔可夫决策过程的模型修复
马尔可夫决策过程(mdp)通常用于建模具有概率失效或随机化的分布式系统。我们考虑MDP模型修复的问题,定义如下:如果MDP不能满足一个属性,我们的目标是为转移概率找到新的值,以保证该属性保持不变,同时最小化修复成本。由于精确求解MDP修复问题是不可行的,因此本文主要采用近似求解方法。我们首先制定了一种基于区域的方法,该方法产生了一个包含最小维修成本的区间。作为替代方案,我们还考虑了基于采样的方法,这种方法更快,但无法提供修复成本的下限。我们将这两种方法集成到概率模型检查器PRISM中,并通过计算机病毒案例研究证明了它们在实践中的实用性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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