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A Model of Discourse Predictions in Human Sentence Processing

机译:句子加工中的话语预测模型

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This paper introduces a psycholinguistic model of sentence processing which combines a Hidden Markov Model noun phrase chun-ker with a co-reference classifier. Both models are fully incremental and generative, giving probabilities of lexical elements conditional upon linguistic structure. This allows us to compute the information theoretic measure of surprisal, which is known to correlate with human processing effort. We evaluate our surprisal predictions on the Dundee corpus of eye-movement data show that our model achieve a better fit with human reading times than a syntax-only model which does not have access to co-reference information.
机译:本文介绍了一种句子处理的心理语言模型,该模型将隐马尔可夫模型名词短语chun-ker与助指分类器相结合。两种模型都是完全增量式和生成式的,给出了以语言结构为条件的词汇元素的概率。这使我们能够计算出意外的信息理论量度,已知该理论量与人工处理量相关。我们对关于眼动数据的邓迪语料库的意外预测进行了评估,结果表明,与无法访问共同参考信息的仅语法模型相比,我们的模型与人类阅读时间的匹配程度更高。

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