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Modeling dative alternations of individual children

机译:模拟个别孩子的亲属轮替

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We address the question whether children can acquire mature use of higher-level grammatical choices from the linguistic input, given only general prior knowledge and learning biases. We do so on the basis of a case study with the dative alternation in English, building on a study by de Marneffe et al. (2012) who model the production of the dative alternation by seven young children, using data from the Child Language Data Exchange System corpus. Using mixed-effects logistic modelling on the aggregated data of these children, De Marneffe et al. report that the children's choices can be predicted both by their own utterances and by child-directed speech. Here we bring the computational modeling down to the individual child, using memory-based learning and incremental learning curve studies. We observe that for all children, their dative choices are best predicted by a model trained on child-directed speech. Yet, models trained on two individual children for which sufficient data is available are about as accurate. Furthermore, models trained on the dative alternations of these children provide approximations of dative alternations in caregiver speech that are about as accurate as training and testing on caregiver data only.
机译:我们只考虑一般先验知识和学习偏见,就儿童能否从语言输入中获得对高级语法选择的成熟利用这一问题。我们以de Marneffe等人的研究为基础,以英语中的和格交替案例研究为基础。 (2012年),他们使用儿童语言数据交换系统语料库中的数据对七个幼儿的亲属轮替产生进行了建模。 De Marneffe等人在这些儿童的汇总数据上使用混合效应逻辑模型。报告指出,儿童的选择可以通过他们自己的话语和以儿童为导向的言语来预测。在这里,我们使用基于记忆的学习和增量学习曲线研究将计算模型应用于每个孩子。我们观察到,对于所有儿童来说,他们的家庭选择都可以通过针对儿童的语音训练模型得到最佳预测。但是,在两个单独的孩子上训练的模型(其可获得足够的数据)大约一样准确。此外,在这些孩子的和格交替上训练的模型提供的照料者语音中的和格交替的近似值与仅对照料者数据的训练和测试一样准确。

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