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Measuring the Perceptual Availability of Phonological Features During Language Acquisition Using Unsupervised Binary Stochastic Autoencoders

机译:使用无监督的二进制随机自动编码器在语言习得期间测量语音特征的可感知可用性

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In this paper, we deploy binary stochastic neural autoencoder networks as models of infant language learning in two typologically unrelated languages (Xitsonga and English). We show that the drive to model auditory percepts leads lo latent clusters that partially align with theory-driven phonemic categories. We further evaluate the degree to which theory-driven phonological features are encoded in the latent bit patterns, finding that some (e.g. [±approximant]), are well represented by the network in both languages, while others (e.g. [±spread glottis]) are less so. Together, these findings suggest that many reliable cues to phonemic structure are immediately available to infants from bottom-up perceptual characteristics alone, but that these cues must eventually be supplemented by top-down lexical and phonotactic information to achieve adult-like phone discrimination. Our results also suggest differences in degree of perceptual availability between features, yielding testable predictions as to which features might depend more or less heavily on top-down cues during child language acquisition.
机译:在本文中,我们将二进制随机神经自动编码器网络部署为两种类型无关的语言(锡松加语和英语)中的婴儿语言学习模型。我们表明,对听觉感知建模的驱动力导致了潜在的群集,这些群集与理论驱动的音素类别部分吻合。我们进一步评估了理论驱动的语音特征在潜在位模式中的编码程度,发现某些语言(例如[±近似值])在两种语言中都能很好地被网络表示,而其他语言(例如[±传播声门] )则不是如此。总之,这些发现表明,仅靠自下而上的知觉特征,婴儿就可以立即获得许多有关音素结构的可靠线索,但是最终这些线索必须由自上而下的词汇和音律信息加以补充,以实现类似于成人的电话辨别力。我们的研究结果还表明,功能之间在感知可用性方面存在差异,从而得出可验证的预测,即在儿童语言习得过程中,哪些功能或多或少地取决于自上而下的提示。

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