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Using Semantic Unification to Generate Regular Expressions from Natural Language

机译:用语义统一从自然语言生成正则表达式

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摘要

We consider the problem of translating natural language text queries into regular expressions which represent their meaning. The mismatch in the level of abstraction between the natural language representation and the regular expression representation make this a novel and challenging problem. However, a given regular expression can be written in many semantically equivalent forms, and we exploit this flexibility to facilitate translation by finding a form which more directly corresponds to the natural language. We evaluate our technique on a set of natural language queries and their associated regular expressions which we gathered from Amazon Mechanical Turk. Our model substantially outperforms a state-of-the-art semantic parsing baseline, yielding a 29% absolute improvement in accuracy.
机译:我们考虑将自然语言文本查询转换为代表其含义的正则表达式的问题。自然语言表示和正则表达式表示之间的抽象级别不匹配,这使它成为一个新颖而具有挑战性的问题。但是,给定的正则表达式可以用许多语义上等效的形式编写,并且我们利用这种灵活性通过找到一种更直接对应于自然语言的形式来促进翻译。我们从Amazon Mechanical Turk收集的一组自然语言查询及其关联的正则表达式中评估我们的技术。我们的模型大大超过了最新的语义解析基线,在准确性方面产生了29%的绝对提高。

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