Sampling-Based Verification of CTMCs with Uncertain Rates

Author:

Badings Thom S.ORCID,Jansen NilsORCID,Junges SebastianORCID,Stoelinga MarielleORCID,Volk MatthiasORCID

Abstract

AbstractWe employ uncertain parametric CTMCs with parametric transition rates and a prior on the parameter values. The prior encodes uncertainty about the actual transition rates, while the parameters allow dependencies between transition rates. Sampling the parameter values from the prior distribution then yields a standard CTMC, for which we may compute relevant reachability probabilities. We provide a principled solution, based on a technique called scenario-optimization, to the following problem: From a finite set of parameter samples and a user-specified confidence level, compute prediction regions on the reachability probabilities. The prediction regions should (with high probability) contain the reachability probabilities of a CTMC induced by any additional sample. To boost the scalability of the approach, we employ standard abstraction techniques and adapt our methodology to support approximate reachability probabilities. Experiments with various well-known benchmarks show the applicability of the approach.

Publisher

Springer International Publishing

Cited by 12 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. No Risk, No Fun;Lecture Notes in Computer Science;2024-09-13

2. Parameter synthesis for Markov models: covering the parameter space;Formal Methods in System Design;2024-02-17

3. CTMCs with Imprecisely Timed Observations;Lecture Notes in Computer Science;2024

4. Algorithmic Minimization of Uncertain Continuous-Time Markov Chains;IEEE Transactions on Automatic Control;2023-11

5. Decision-making under uncertainty: beyond probabilities;International Journal on Software Tools for Technology Transfer;2023-05-30

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