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String Re-writing Kernel

机译:字符串重写内核

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Learning for sentence re-writing is a fundamental task in natural language processing and information retrieval. In this paper, we propose a new class of kernel functions, referred to as string re-writing kernel, to address the problem. A string re-writing kernel measures the similarity between two pairs of strings, each pair representing re-writing of a string. It can capture the lexical and structural similarity between two pairs of sentences without the need of constructing syntactic trees. We further propose an instance of string rewriting kernel which can be computed efficiently. Experimental results on benchmark datasets show that our method can achieve better results than state-of-the-art methods on two sentence re-writing learning tasks: paraphrase identification and recognizing textual entail-ment.
机译:学习句子重写是自然语言处理和信息检索中的一项基本任务。在本文中,我们提出了一类新的内核函数,称为字符串重写内核,以解决该问题。字符串重写内核测量两对字符串之间的相似性,每对代表字符串的重写。它可以捕获两对句子之间的词汇和结构相似性,而无需构建语法树。我们进一步提出了可以有效计算的字符串重写内核的实例。在基准数据集上的实验结果表明,在两个句子重写学习任务:释义识别和文本蕴涵识别方面,我们的方法比最新方法可获得更好的结果。

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