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The Utility of Cognitive Plausibility in Language Acquisition Modeling: Evidence From Word Segmentation

机译:认知合理性在语言习得建模中的效用:来自分词的证据

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AbstractThe informativity of a computational model of language acquisition is directly related to how closely it approximates the actual acquisition task, sometimes referred to as the model's cognitive plausibility. We suggest that though every computational model necessarily idealizes the modeled task, an informative language acquisition model can aim to be cognitively plausible in multiple ways. We discuss these cognitive plausibility checkpoints generally and then apply them to a case study in word segmentation, investigating a promising Bayesian segmentation strategy. We incorporate cognitive plausibility by using an age-appropriate unit of perceptual representation, evaluating the model output in terms of its utility, and incorporating cognitive constraints into the inference process. Our more cognitively plausible model shows a beneficial effect of cognitive constraints on segmentation performance. One interpretation of this effect is as a synergy between the naive theories of language structure that infants may have and the cognitive constraints that limit the fidelity of their inference processes, where less accurate inference approximations are better when the underlying assumptions about how words are generated are less accurate. More generally, these results highlight the utility of incorporating cognitive plausibility more fully into computational models of language acquisition.
机译:摘要语言习得的计算模型的信息性直接关系到它与实际习得任务的接近程度,有时也称为模型的认知合理性。我们建议,尽管每个计算模型都必须使建模任务理想化,但是信息丰富的语言习得模型可以以多种方式在认知上具有合理性。我们通常讨论这些认知似真性检查点,然后将其应用于分词案例研究中,研究一种有前途的贝叶斯分割策略。我们通过使用年龄适合的感知表示单位,根据模型的效用评估模型输出,并将认知约束条件纳入推理过程,从而纳入认知可信度。我们在认知上更合理的模型显示了认知约束对细分效果的有益影响。这种影响的一种解释是,婴儿可能具有的幼稚语言结构理论和限制其推理过程的保真度的认知约束条件之间的协同作用,当对单词的产生方式进行基本假设时,准确度较低的推理近似会更好。不太准确。更一般地,这些结果突出了将认知似真性更充分地整合到语言习得的计算模型中的效用。

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