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Tuesday, February 28, 2017

Monte Carlo Action Programming. (arXiv:1702.08441v1 [cs.AI])

This paper proposes Monte Carlo Action Programming, a programming language framework for autonomous systems that act in large probabilistic state spaces with high branching factors. It comprises formal syntax and semantics of a nondeterministic action programming language. The language is interpreted stochastically via Monte Carlo Tree Search. Effectiveness of the approach is shown empirically.



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