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Analysis of Typefaces Designed for Readers with Developmental Dyslexia Insights from Neural Networks

机译:分析来自神经网络的具有发展性阅读障碍见识的读者所设计的字体

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Developmental dyslexia is a specific learning disability that is characterized by severe difficulties in learning to read. Amongst various supporting technologies, there are typefaces specially designed for readers with dyslexia. Although recent research shows the effectiveness of these typefaces, the visual characteristics of these typefaces that are good for readers with dyslexia are yet to be revealed. This research aims to explore the possibilities of using neural networks to clarify the visual characteristics of Latin dyslexia typefaces and apply those to typefaces in other languages, in this case, Japanese. As a first step, we conducted simple classification tasks to see whether a CNN identifies subtle differences between Latin dyslexia typefaces and standard typefaces, and whether it can be applied to classify Japanese characters. The results show that CNNs are able to learn visual characteristics of Latin dyslexia typefaces and classify Japanese typefaces with those features. This indicates the possibility of further utilizing neural networks for research regarding typefaces for readers with dyslexia across languages.
机译:发展性阅读障碍是一种特殊的学习障碍,其特征在于学习阅读方面存在严重困难。在各种支持技术中,有专门为阅读困难的读者设计的字体。尽管最近的研究显示了这些字体的有效性,但这些字体对于阅读障碍的读者的视觉特征仍有待揭示。这项研究旨在探索使用神经网络来阐明拉丁文阅读障碍字体的视觉特征并将其应用于其他语言(在这种情况下为日语)的字体的可能性。第一步,我们进行了简单的分类任务,以查看CNN是否能识别出拉丁语阅读障碍字体和标准字体之间的细微差别,以及是否可用于对日语字符进行分类。结果表明,CNN能够学习拉丁语阅读障碍字体的视觉特征,并利用这些特征对日文字体进行分类。这表明有可能进一步利用神经网络来研究跨语言阅读障碍的读者的字体。

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