SCOOP: A Tool for SymboliC Optimisations of Probabilistic Processes

Mark Timmer
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引用次数: 29

Abstract

This paper presents SCOOP: a tool that symbolically optimises process-algebraic specifications of probabilistic processes. It takes specifications in the prCRL language (combining data and probabilities), which are linearised first to an intermediate format: the LPPE. On this format, optimisations such as dead-variable reduction and confluence reduction are applied automatically by SCOOP. That way, drastic state space reductions are achieved while never having to generate the complete state space, as data variables are unfolded only locally. The optimised state spaces are ready to be analysed by for instance CADP or PRISM.
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SCOOP:概率过程的符号优化工具
本文提出SCOOP:一个工具,象征性地优化过程代数规范的概率过程。它采用prCRL语言(结合数据和概率)的规范,这些规范首先被线性化为一种中间格式:LPPE。在这种格式下,诸如死变量减少和合流减少等优化由SCOOP自动应用。通过这种方式,可以大幅减少状态空间,而不必生成完整的状态空间,因为数据变量只在局部展开。优化后的状态空间可以通过例如CADP或PRISM进行分析。
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SCOOP: A Tool for SymboliC Optimisations of Probabilistic Processes Compositional Abstractions for Long-Run Properties of Stochastic Systems MARCIE - Model Checking and Reachability Analysis Done EffiCIEntly Quantifying Information Flow Using Min-Entropy Model Checking MDPs with a Unique Compact Invariant Set of Distributions
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