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Meta-Interpretive Learning Using HEX-Programs
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Abstract
Meta-Interpretive Learning (MIL) is a recent approach for Inductive Logic Programming (ILP) implemented in Prolog. Alternatively, MIL-problems can be solved by using Answer Set Programming (ASP), which may result in performance gains due to efficient conflict propagation. However, a straightforward MIL-encoding results in a huge size of the ground program and search space. To address these challenges, we encode MIL in the HEX-extension of ASP, which mitigates grounding issues, and we develop novel pruning techniques.
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Publication details
- DOI
- 10.24963/ijcai.2019/860
- OpenAlex
- W2964612035
- Document type
- conference-paper
- Language
- EN
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