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Semi-supervised methods for expanding psycholinguistics norms by integrating distributional similarity with the structure of WordNet

机译:通过将分布相似性与WordNet的结构相结合来扩展心理语言学规范的半监督方法

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In this work, we present two complementary methods for the expansion of psycholinguistics norms. The first method is a random-traversal spreading activation approach which transfers existing norms onto semantically related terms using notions of synonymy, hypemymy, and pertainymy to approach full coverage of the English language. The second method makes use of recent advances in distributional similarity representation to transfer existing norms to their closest neighbors in a high-dimensional vector space. These two methods (along with a naive hybrid approach combining the two) have been shown to significantly outperform a state-of-the-art resource expansion system at our pilot task of imageability expansion. We have evaluated these systems in a cross-validation experiment using 8,188 norms found in existing pscholinguistics literature. We have also validated the quality of these combined norms by performing a small study using Amazon Mechanical Turk (AMT).
机译:在这项工作中,我们提出了两种补充方法来扩展心理语言学规范。第一种方法是随机遍历扩展激活方法,该方法使用同义词,同义和附属的概念将现有规范转换为语义相关的术语,以全面覆盖英语。第二种方法利用分布相似性表示法的最新进展将现有范数转移到高维向量空间中的最接近邻居。在我们的可成像性扩展性试验任务中,这两种方法(以及结合这两种方法的幼稚混合方法)已显示出明显优于最新的资源扩展系统。我们在交叉验证实验中使用现有的心理学文献中发现的8,188个规范对这些系统进行了评估。我们还通过使用Amazon Mechanical Turk(AMT)进行了一项小型研究来验证这些组合规范的质量。

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