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首页> 外文期刊>Cognitive science >Spicy Adjectives and Nominal Donkeys: Capturing Semantic Deviance Using Compositionality in Distributional Spaces
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Spicy Adjectives and Nominal Donkeys: Capturing Semantic Deviance Using Compositionality in Distributional Spaces

机译:辣形容词和公驴:使用分布空间中的组合性捕获语义偏差

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Sophisticated senator and legislative onion. Whether or not you have ever heard of these things, we all have some intuition that one of them makes much less sense than the other. In this paper, we introduce a large dataset of human judgments about novel adjective-noun phrases. We use these data to test an approach to semantic deviance based on phrase representations derived with compositional distributional semantic methods, that is, methods that derive word meanings from contextual information, and approximate phrase meanings by combining word meanings. We present several simple measures extracted from distributional representations of words and phrases, and we show that they have a significant impact on predicting the acceptability of novel adjective-noun phrases even when a number of alternative measures classically employed in studies of compound processing and bigram plausibility are taken into account. Our results show that the extent to which an attributive adjective alters the distributional representation of the noun is the most significant factor in modeling the distinction between acceptable and deviant phrases. Our study extends current applications of compositional distributional semantic methods to linguistically and cognitively interesting problems, and it offers a new, quantitatively precise approach to the challenge of predicting when humans will find novel linguistic expressions acceptable and when they will not.
机译:老练的参议员和立法葱。不管您是否听说过这些事情,我们都有一些直觉,认为其中之一的意义远小于另一种。在本文中,我们介绍了有关新形容词名词短语的大量人类判断数据集。我们使用这些数据来测试基于基于成分分布语义方法派生的短语表示(即从上下文信息中提取单词含义的方法,以及通过组合单词含义来近似短语含义)的语义偏离方法。我们提供了一些从单词和短语的分布表示中提取的简单量度,并且我们发现,即使在复合处理和双字母组似然性研究中经典采用的许多替代量度中,它们也对预测新型形容词名词短语的可接受性具有重大影响。被考虑在内。我们的研究结果表明,定语形容词改变名词的分布形式的程度是在建模可接受的和偏离的短语之间的区别时最重要的因素。我们的研究将成分分布语义方法的当前应用扩展到语言和认知上有趣的问题,并且它为预测人类何时会发现可接受的新语言表达以及何时将不会接受的预测提供了一种新的,定量精确的方法。

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