Autism Detection in Speech – A Survey

Findings Pub Date : 2024-02-20 DOI:10.48550/arXiv.2402.12880
Nadine Probol, Margot Mieskes
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Abstract

There has been a range of studies of how autism is displayed in voice, speech, and language. We analyse studies from the biomedical, as well as the psychological domain, but also from the NLP domain in order to find linguistic, prosodic and acoustic cues. Our survey looks at all three domains. We define autism and which comorbidities might influence the correct detection of the disorder. We especially look at observations such as verbal and semantic fluency, prosodic features, but also disfluencies and speaking rate. We also show word-based approaches and describe machine learning and transformer-based approaches both on the audio data as well as the transcripts. Lastly, we conclude, while there already is a lot of research, female patients seem to be severely under-researched. Also, most NLP research focuses on traditional machine learning methods instead of transformers. Additionally, we were unable to find research combining both features from audio and transcripts.
语音中的自闭症检测--一项调查
关于自闭症如何通过声音、言语和语言表现出来,已有一系列研究。我们分析了生物医学和心理学领域的研究,也分析了 NLP 领域的研究,以寻找语言、节奏和声学线索。我们的调查涉及所有三个领域。我们定义了自闭症,以及哪些合并症可能会影响自闭症的正确检测。我们尤其关注语言和语义的流畅性、前语态特征以及语无伦次和语速等观察结果。我们还展示了基于单词的方法,并介绍了基于机器学习和转换器的方法,这些方法既适用于音频数据,也适用于文字记录。最后,我们总结道,虽然已有大量研究,但对女性患者的研究似乎严重不足。而且,大多数 NLP 研究都集中在传统的机器学习方法上,而不是转换器上。此外,我们无法找到同时结合音频和文字记录特征的研究。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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