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Modeling human performance in statistical word segmentation

机译:在统计分词中模拟人类表现

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The ability to discover groupings in continuous stimuli on the basis of distributional information is present across species and across perceptual modalities. We investigate the nature of the computations underlying this ability using statistical word segmentation experiments in which we vary the length of sentences, the amount of exposure, and the number of words in the languages being learned. Although the results are intuitive from the perspective of a language learner (longer sentences, less training, and a larger language all make learning more difficult), standard computational proposals fail to capture several of these results. We describe how probabilistic models of segmentation can be modified to take into account some notion of memory or resource limitations in order to provide a closer match to human performance.
机译:跨物种和跨知觉方式存在基于分布信息发现连续刺激中分组的能力。我们使用统计分词实验研究这种能力基础计算的本质,在该实验中,我们改变句子的长度,暴露量以及所学习语言中的词数。尽管从语言学习者的角度来看结果是直观的(较长的句子,更少的训练和更多的语言都会使学习更加困难),但是标准的计算建议无法捕获其中的一些结果。我们描述了如何修改概率分割模型以考虑内存或资源限制的某些概念,以便更接近人类的表现。

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