arXiv · 1806.06683
New Approaches for Almost-Sure Termination of Probabilistic Programs
Abstract
We study the almost-sure termination problem for probabilistic programs. First, we show that supermartingales with lower bounds on conditional absolute difference provide a sound approach for the almost-sure termination problem. Moreover, using this approach we can obtain explicit optimal bounds on tail probabilities of non-termination within a given number of steps. Second, we present a new approach based on Central Limit Theorem for the almost-sure termination problem, and show that this approach can establish almost-sure termination of programs which none of the existing approaches can handle. Finally, we discuss algorithmic approaches for the two above methods that lead to automated analysis techniques for almost-sure termination of probabilistic programs.
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Mingzhang Huang, Hongfei Fu, Krishnendu Chatterjee. 2018-06-14. New Approaches for Almost-Sure Termination of Probabilistic Programs. https://arxiv.org/abs/1806.06683
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