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Optimizing Probabilities in Probabilistic Logic Programs

  • Theory and Practice of Logic Programming
  • Cambridge University Press
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Abstract Probabilistic logic programming is an effective formalism for encoding problems characterized by uncertainty. Some of these problems may require the optimization of probability values subject to constraints among probability distributions of random variables. Here, we introduce a new class of probabilistic logic programs, namely probabilistic optimizable logic programs, and we provide an effective algorithm to find the best assignment to probabilities of random variables, such that a set of constraints is satisfied and an objective function is optimized.

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DOI
10.1017/s1471068421000260
OpenAlex
W3188954394
Document type
article
Language
EN
Source
Theory and Practice of Logic Programming
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