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Modelling normal and impaired letter recognition: Implications for understanding pure alexic reading

机译:模拟正常和受损的字母识别:理解纯词汇阅读的含义

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Letter recognition is the foundation of the human reading system. Despite this, it tends to receive little attention in computational modelling of single word reading. Here we present a model that can be trained to recognise letters in various spatial transformations. When presented with degraded stimuli the model makes letter confusion errors that correlate with human confusability data. Analyses of the internal representations of the model suggest that a small set of learned visual feature detectors support the recognition of both upper case and lower case letters in various fonts and transformations. We postulated that a damaged version of the model might be expected to act in a similar manner to patients suffering from pure alexia. Summed error score generated from the model was found to be a very good predictor of the reading times of pure alexic patients, outperforming simple word length, and accounting for 47% of the variance. These findings are consistent with a hypothesis suggesting that impaired visual processing is a key to understanding the strong word-length effects found in pure alexic patients.
机译:字母识别是人类阅读系统的基础。尽管如此,它在单字阅读的计算建模中很少受到关注。在这里,我们提出一个可以训练以识别各种空间变换中的字母的模型。当呈现退化的刺激时,该模型会产生与人类易混淆性数据相关的字母混淆错误。对模型内部表示的分析表明,一小组学习过的视觉特征检测器支持识别各种字体和转换中的大写和小写字母。我们推测模型的损坏版本可能会与患有纯净性无氧血症的患者以类似的方式起作用。该模型产生的总错误评分被发现是纯正纯正患者阅读时间的很好的预测指标,优于简单的单词长度,占变异的47%。这些发现与一个假设相符,该假设表明视力处理受损是理解纯文字患者强烈的字长影响的关键。

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