2018
DOI: 10.1017/s1471068418000261
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Exploiting Answer Set Programming with External Sources for Meta-Interpretive Learning

Abstract: Meta-Interpretive Learning (MIL) learns logic programs from examples by instantiating meta-rules, which is implemented by the Metagol system based on Prolog. Viewing MIL-problems as combinatorial search problems, they can alternatively be solved by employing Answer Set Programming (ASP), which may result in performance gains as a result of efficient conflict propagation. However, a straightforward ASP-encoding of MIL results in a huge search space due to a lack of procedural bias and the need for grounding. To… Show more

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Cited by 20 publications
(43 citation statements)
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“…Figure 12 also shows that both HEXMIL and HEXMIL ho do not scale well in the number of training examples, especially the learning times. Our results in Section 4.5 help explain the poor scalability of HEXMIL and HEXMIL ho because more training examples typically means more constant symbols which in turn means a larger search complexity for both HEXMIL and HEXMIL ho , although this issue can be mitigated using state abstraction [23].…”
Section: Resultsmentioning
confidence: 89%
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“…Figure 12 also shows that both HEXMIL and HEXMIL ho do not scale well in the number of training examples, especially the learning times. Our results in Section 4.5 help explain the poor scalability of HEXMIL and HEXMIL ho because more training examples typically means more constant symbols which in turn means a larger search complexity for both HEXMIL and HEXMIL ho , although this issue can be mitigated using state abstraction [23].…”
Section: Resultsmentioning
confidence: 89%
“…Metagol ho supports the invention of conditions and functions to an arbitrary depth, which goes beyond anything in the literature. We also introduce HEXMIL ho , which likewise extends HEXMIL [23], an answer set programming (ASP) MIL implementation, to support learning higher-order programs. As far as we are aware, HEXMIL ho is the first ASP-based ILP system that has been demonstrated capable of learning higher-order programs.…”
Section: Encryptedmentioning
confidence: 99%
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