归纳方程逻辑规划中的进化搜索

L. Hamel
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引用次数: 6

摘要

概念学习是从一组例子中归纳出一个描述。归纳逻辑规划可以被认为是概念学习的一般概念的特殊情况,具体涉及一阶理论的归纳。概念学习和归纳逻辑编程都可以看作是在某些表示语言中搜索所有可能的句子,寻找正确解释示例的句子,并将其推广到作为该概念一部分的其他句子。我们探索用等式逻辑作为表示语言的归纳逻辑规划。我们介绍了使用遗传规划实现归纳方程逻辑的高级概述,并讨论了基于旨在模拟现实世界场景的实验的令人鼓舞的结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Evolutionary search in inductive equational logic programming
Concept learning is the induction of a description from a set of examples. Inductive logic programming can be considered a special case of the general notion of concept learning specifically referring to the induction of first-order theories. Both concept learning and inductive logic programming can be seen as a search over all possible sentences in some representation language for sentences that correctly explain the examples and also generalize to other sentences that are part of that concept. We explore inductive logic programming with equational logic as the representation language. We present a high-level overview of the implementation of inductive equational logic using genetic programming and discuss encouraging results based on experiments that are intended to emulate real world scenarios.
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