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A Sentence Similarity Method Based on Chunking and Information Content

机译:一种基于截头和信息内容的句子相似性方法

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This paper introduces a method for assessing the semantic similarity between sentences, which relies on the assumption that the meaning of a sentence is captured by its syntactic constituents and the dependencies between them. We obtain both the constituents and their dependencies from a syntactic parser. Our algorithm considers that two sentences have the same meaning if it can find a good mapping between their chunks and also if the chunk dependencies in one text are preserved in the other. Moreover, the algorithm takes into account that every chunk has a different importance with respect to the overall meaning of a sentence, which is computed based on the information content of the words in the chunk. The experiments conducted on a well-known paraphrase data set show that the performance of our method is comparable to state of the art.
机译:本文介绍了一种评估句子之间的语义相似性的方法,这依赖于假设句子的含义被其句法成分和它们之间的依赖关系捕获。 我们从句法解析器获得成分及其依赖关系。 我们的算法认为,如果它在块之间找到一个很好的映射,并且如果在另一个文本中保留块依赖性,则两句话具有相同的含义。 此外,该算法考虑到每个块对句子的整体含义具有不同的重要性,这基于块中的单词的信息内容来计算。 在众所周知的解释数据集上进行的实验表明,我们的方法的性能与现有技术相当。

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