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Genetic Programming with Incremental Learning for Grammatical Inference

机译:遗传学习与增量学习的语法推理

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We present an evolutionary algorithm for the inference of context-free grammars from positive and negative examples. The algorithm is based on genetic programming and uses a local optimization operator that is capable of improving the learning task. Ordinary genetic operators are modified so as to bias the search. The system was evaluated using Tomita¿s language examples and results were compared with another similar approach. Results show that the proposed approach is promising and more robust than the other one.
机译:我们提出了一种从正负示例推断上下文无关文法的进化算法。该算法基于遗传编程,并使用能够改善学习任务的局部优化算子。普通的遗传算子被修改以偏向搜索。该系统使用Tomita的语言示例进行了评估,并将结果与​​另一种类似的方法进行了比较。结果表明,所提出的方法是有前途的,并且比另一种方法更健壮。

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