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Individualized Early Prediction of Familial Risk of Dyslexia: A Study of Infant Vocabulary Development

机译:个体阅读障碍的家族性早期预测:婴儿词汇发展研究

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We examined early vocabulary development in children at familial risk (FR) of dyslexia and typically developing (TD) children between 17 and 35 months of age. We trained a support vector machine to classify TD and FR using these vocabulary data at the individual level. The Dutch version of the McArthur-Bates Communicative Development Inventory (Words and Sentences) (N-CDI) was used to measure vocabulary development. We analyzed group-level differences for both total vocabulary as well as lexical classes: common nouns, predicates, and closed class words. The generalizability of the classification model was tested using cross-validation. At the group level, for both total vocabulary and the composites, the difference between TD and FR was most pronounced at 19–20 months, with FRs having lower scores. For the individual prediction, highest cross-validation accuracy (68%) was obtained at 19–20 months, with sensitivity (correctly classified FR) being 70% and specificity (correctly classified TD) being 67%. There is a sensitive window in which the difference between FR and TD is most evident. Machine learning methods are promising techniques for separating FR and TD children at an early age, before they start reading.
机译:我们检查了患有诵读困难症的家族风险(FR)的儿童以及17至35个月大的发育中(TD)儿童的早期词汇发育。我们训练了一个支持向量机,使用这些词汇数据在个体级别上对TD和FR进行分类。荷兰版的《麦克阿瑟·贝茨交流能力发展量表(单词和句子)(N-CDI)》用于衡量词汇量的发展。我们分析了总词汇量和词汇类的组级别差异:常见名词,谓语和封闭类单词。使用交叉验证测试了分类模型的可推广性。在小组一级,对于总词汇量和复合词汇量,TD和FR之间的差异在19-20个月时最为明显,而FR得分较低。对于单个预测,在19–20个月时可获得最高的交叉验证准确性(68%),灵敏度(正确分类的FR)为70%,特异性(正确分类的TD)为67%。在一个敏感的窗口中,FR和TD之间的差异最为明显。机器学习方法是有前途的技术,可以在他们开始阅读之前,将FR和TD儿童从小分开。

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