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What Is the Cube Root of 27? Question Answering Over CodeOntology

机译:27的立方根是什么?关于CodeNontology的问题

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We present an unsupervised approach to process natural language questions that cannot be answered by factual question answering nor advanced data querying, requiring instead ad-hoc code generation and execution. To address this challenging task, our system, AskCO, performs language-to-code translation by interpreting the natural language question and generating a SPARQL query that is run against CodeOntology, a large RDF repository containing millions of triples representing Java code constructs. The query retrieves a number of Java source code snippets and methods, ranked by AskCO on both syntactic and semantic features, to find the best candidate, that is then executed to get the correct answer. The evaluation of the system is based on a dataset extracted from StackOverflow and experimental results show that our approach is comparable with other state-of-the-art proprietary systems, such as the closed-source WolframAlpha computational knowledge engine.
机译:我们介绍了一种无监督的方法来处理无法通过事实问题应答或高级数据查询来回答的自然语言问题,而是要求ad-hoc代码生成和执行。为了解决这项挑战性任务,我们的系统Askco通过解释自然语言问题并生成针对语料问题的SPARQL查询来执行语言到代码转换,其中包含数百万三元组的大型RDF存储库代表Java代码构造。查询检索多个Java源代码片段和方法,由Askco进行句法和语义功能排名,找到最佳候选人,然后执行以获得正确的答案。系统的评估基于来自StackOverflow和实验结果中提取的数据集,表明我们的方法与其他最先进的专有系统相当,例如封闭源Wolframalpha计算知识引擎。

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