首页> 外文期刊>Journal of psycholinguistic research >Latent Semantic Analysis Discriminates Children with Developmental Language Disorder (DLD) from Children with Typical Language Development
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Latent Semantic Analysis Discriminates Children with Developmental Language Disorder (DLD) from Children with Typical Language Development

机译:潜在语义分析判别具有典型语言开发的儿童的发育语言障碍(DLD)的儿童

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摘要

Computer based analyses offer a possibility for objective methods to assess semantic-linguistic quality of narratives at the text level. The aim of the present study is to investigate whether a semantic language impairment index (SELIMI) based on latent semantic analysis (LSA) can discriminate between children with developmental language disorder (DLD) and children with typical language development. Spoken narratives from 54 children with DLD and 54 age matched controls with typical language development were summarized in a semantic representation generated using LSA. A statistical model was trained to discriminate between children with DLD and children with typical language development, given the semantic vector representing each individual child's narrative. The results show that SELIMI could distinguish between children with DLD and children with typical language development significantly better than chance and thus has a potential to complement traditional analyses focussed on form or on the word level.
机译:基于计算机的分析提供了客观方法,以评估文本级别的叙事语言质量。本研究的目的是调查基于潜在语义分析(LSA)的语义语言减值指数(SELIMI)可以区分具有典型语言发展的发育语言障碍(DLD)和儿童的儿童。使用LSA生成的语义表示,总结了54名具有DLD和54岁匹配控件的54名儿童的口语叙述。鉴于表示每个儿童叙述的语义矢量,培训统计模型以区分DLD和具有典型语言开发的儿童。结果表明,Selimi可以区分DLD和儿童的典型语言开发明显优于机会,因此有潜力补充传统分析,这些分析集中在形式或单词水平上。

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