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An Unsupervised Approach to Interpreting Noun Compounds

机译:解释名词化合物的无监督方法

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摘要

This paper proposes an unsupervised approach to automatically interpret noun compounds using semantic similarity. Our proposed unsupervised method is based on obtaining a large amount of robust evidence for NC interpretation. In order to obtain evidence sentences for semantic relations (SRs), we first acquired sentences containing both a head noun and its modifier in the form of SR defi-nitions. Then we determined the semantic relations represented in the sentences by looking at the nouns in the test instances (noun mapping) and verbs in the SR definitions (verb mapping). In the noun mapping, we measured the similarity between nouns in test instances and nouns in the collected sentences. In the verb mapping, we mapped the verbs of sentences onto those in the SR definitions. Finally, we built a statistical classifier to interpret noun compounds and evaluated it over 17 SRs defined in [1].
机译:本文提出了一种使用语义相似性自动解释名词化合物的无监督方法。我们提出的无监督方法是基于获得大量有力的NC解释证据。为了获得有关语义关系(SR)的证据句子,我们首先获得了同时包含头名词和其修饰语的SR定义形式的句子。然后,通过查看测试实例中的名词(名词映射)和SR定义中的动词(动词映射)来确定句子中表示的语义关系。在名词映射中,我们测量了测试实例中的名词与所收集句子中的名词之间的相似性。在动词映射中,我们将句子的动词映射到SR定义中的动词上。最后,我们建立了一个统计分类器来解释名词化合物,并根据[1]中定义的17个SR对其进行了评估。

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