Parameter Synthesis in Markov Models: A Gentle Survey

N. Jansen, Sebastian Junges, J. Katoen
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引用次数: 3

Abstract

This paper surveys the analysis of parametric Markov models whose transitions are labelled with functions over a finite set of parameters. These models are symbolic representations of uncountable many concrete probabilistic models, each obtained by instantiating the parameters. We consider various analysis problems for a given logical specification $\varphi$: do all parameter instantiations within a given region of parameter values satisfy $\varphi$?, which instantiations satisfy $\varphi$ and which ones do not?, and how can all such instantiations be characterised, either exactly or approximately? We address theoretical complexity results and describe the main ideas underlying state-of-the-art algorithms that established an impressive leap over the last decade enabling the fully automated analysis of models with millions of states and thousands of parameters.
马尔可夫模型的参数综合研究
本文研究了用有限参数集上的函数标记转移的参数马尔可夫模型的分析。这些模型是无数具体概率模型的符号表示,每个模型都是通过实例化参数获得的。我们考虑给定逻辑规范$\varphi$的各种分析问题:在给定参数值区域内的所有参数实例化是否满足$\varphi$?,哪些实例化满足$\varphi$,哪些不满足?所有这些实例如何被精确地或近似地描述呢?我们解决了理论复杂性结果,并描述了在过去十年中建立了令人印象深刻的飞跃的最先进算法的主要思想,使具有数百万状态和数千个参数的模型的全自动分析成为可能。
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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