利用条件独立优化认知模型检查

R. V. D. Meyden
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引用次数: 2

摘要

条件独立推理已被证明有助于贝叶斯网络优化概率推理,相关技术已被应用于布尔逻辑中通过消除公式中不相关的部分来加快一些逻辑推理任务。本文证明了条件独立推理也可以应用于优化认知模型检查,其中验证了具有不完全信息的多个智能体的模型是否满足用模态多智能体知识逻辑表示的公式。开发了一种优化技术,该技术在使用模型检查算法之前使用了一种应用条件独立推理的分析来减小模型的大小。在认知模型检查器MCK中实现了该优化。本文报告的实验结果表明,它可以产生多个数量级的性能改进。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Optimizing Epistemic Model Checking using Conditional Independence
Conditional independence reasoning has been shown to be helpful in the context of Bayesian nets to optimize probabilistic inference, and related techniques have been applied to speed up a number of logical reasoning tasks in boolean logic by eliminating irrelevant parts of the formulas. This paper shows that conditional independence reasoning can also be applied to optimize epistemic model checking, in which one verifies that a model for a number of agents operating with imperfect information satisfies a formula expressed in a modal multi-agent logic of knowledge. An optimization technique is developed that precedes the use of a model checking algorithm with an analysis that applies conditional independence reasoning to reduce the size of the model. The optimization has been implemented in the epistemic model checker MCK. The paper reports experimental results demonstrating that it can yield multiple orders of magnitude performance improvements.
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