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Weighted Rules under the Stable Model Semantics

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We introduce the concept of weighted rules under the stable model semantics following the log-linear models of Markov Logic. This provides versatile methods to overcome the deterministic nature of the stable model semantics, such as resolving inconsistencies in answer set programs, ranking stable models, associating probability to stable models, and applying statistical inference to computing weighted stable models. We also present formal comparisons with related formalisms, such as answer set programs, Markov Logic, ProbLog, and P-log.

Joohyung Lee, Yi Wang• 2026

Related benchmarks

TaskDatasetResultRank
Simple P-log Program Computationdice
Preparation Time (s)0.02
19
Simple P-log Program ComputationRobot
Preparation Time (s)2.3
16
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