基于语音处理技术的波斯语独立数据集诊断自闭症感染儿童

Maryam Alizadeh, S. Tabibian
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引用次数: 0

摘要

自闭症谱系障碍是大脑发育障碍的一种。诊断自闭症患者最简单的方法是通过语音处理技术。然而,这方面的研究还很有限。原因可能是由于该领域缺乏有效和合适的数据集。因此,本文在分析该领域现有数据集的同时,讨论了使用语音处理方法设计、收集和评估一个独立于波斯语说话人的数据集(perssionsichasd数据集)来诊断儿童自闭症的过程。数据收集是在自闭症专家的监督下进行的。数据集包括那些自闭症儿童难以正确说出的语音单位。评估所提出的数据集的结果表明,对于典型和自闭症感染儿童所表达的语音单位,语音识别准确率分别为76%和12%。上述识别率之间的显著差异(约64%)可用于诊断自闭症感染儿童。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Persian speaker-independent dataset to diagnose autism infected children based on speech processing techniques
Autism spectrum disorder is one kind of brain developmental disorders. The easiest way to diagnose persons with autism is done through speech processing techniques. However, limited researches have been done in this field. The reason may be due to the lack of valid and suitable datasets in this field. Therefore, in this paper, while analyzing the existing datasets in this field, the process of designing, collecting and evaluating a Persian speaker-independent dataset to diagnose children with autism (PersionSIChASD dataset) using speech processing methods has been discussed. Data collection has been done under the supervision of an autism specialist. The dataset includes those phonetic units that children with autism have difficulty in saying them, correctly. The results of evaluating the proposed dataset have shown speech recognition accuracies equal to 76% and 12% for phonetic units articulated by typical and autism infected children, respectively. The significant difference between the mentioned recognition rates (about 64%) could be exploited to diagnose autism infected children.
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