Bounded Model Checking for Probabilistic Programs
May 14, 2016 Β· Declared Dead Β· π Automated Technology for Verification and Analysis
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Authors
Nils Jansen, Christian Dehnert, Benjamin Lucien Kaminski, Joost-Pieter Katoen, Lukas Westhofen
arXiv ID
1605.04477
Category
cs.PL: Programming Languages
Citations
24
Venue
Automated Technology for Verification and Analysis
Last Checked
3 months ago
Abstract
In this paper we investigate the applicability of standard model checking approaches to verifying properties in probabilistic programming. As the operational model for a standard probabilistic program is a potentially infinite parametric Markov decision process, no direct adaption of existing techniques is possible. Therefore, we propose an on-the-fly approach where the operational model is successively created and verified via a step-wise execution of the program. This approach enables to take key features of many probabilistic programs into account: nondeterminism and conditioning. We discuss the restrictions and demonstrate the scalability on several benchmarks.
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