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Interpreting compound nouns with kernel methods

机译:用核方法解释复合名词

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摘要

This paper presents a classification-based approach to noun-noun compound interpretation within the statistical learning framework of kernel methods. In this framework, the primary modelling task is to define measures of similarity between data items, formalised as kernel functions. We consider the different sources of information that are useful for understanding compounds and proceed to define kernels that compute similarity between compounds in terms of these sources. In particular, these kernels implement intuitive notions of lexical and relational similarity and can be computed using distributional information extracted from text corpora. We report performance on classification experiments with three semantic relation inventories at different levels of granularity, demonstrating in each case that combining lexical and relational information sources is beneficial and gives better performance than either source taken alone. The data used in our experiments are taken from general English text, but our methods are also applicable to other domains and potentially to other languages where noun-noun compounding is frequent and productive.
机译:本文在核方法的统计学习框架内提出了一种基于分类的名词-名词复合解释方法。在此框架中,主要的建模任务是定义数据项之间的相似性度量,形式化为内核函数。我们考虑了有助于理解化合物的不同信息来源,并继续定义了根据这些来源计算化合物之间相似度的内核。特别是,这些内核实现了词汇和关系相似性的直观概念,并且可以使用从文本语料库中提取的分布信息进行计算。我们报告了在三种粒度级别不同的语义关系清单进行分类实验时的性能,表明在每种情况下组合词汇和关系信息源都是有益的,并且比单独使用任何一种源都具有更好的性能。实验中使用的数据取自通用英语文本,但我们的方法也适用于其他领域,也可能适用于名词-名词复合频繁且富有成效的其他语言。

著录项

  • 来源
    《Natural language engineering》 |2013年第3期|331-356|共26页
  • 作者单位

    Computer Laboratory, University of Cambridge, Cambridge, UK;

    Computer Laboratory, University of Cambridge, Cambridge, UK;

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  • 原文格式 PDF
  • 正文语种 eng
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