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Recent Advances in Computer Audition for Diagnosing COVID-19: An Overview

机译:诊断Covid-19的计算机试镜最近的进展:概述

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Computer audition (CA) has been demonstrated to be efficient in healthcare domains for speech-affecting disorders (e. g., autism spectrum, depression, or Parkinson's disease) and body sound-affecting abnormalities (e. g., abnormal bowel sounds, heart murmurs, or snore sounds). Nevertheless, CA has been underestimated in the considered data-driven technologies for fighting the COVID-19 pandemic caused by the SARS-CoV-2 coronavirus. In this light, summarise the most recent advances in CA for COVID-19 speech and/or sound analysis. While the milestones achieved are encouraging, there are yet not any solid conclusions that can be made. This comes mostly, as data is still sparse, often not sufficiently validated and lacking in systematic comparison with related diseases that affect the respiratory system. In particular, CA-based methods cannot be a standalone screening tool for SARS-CoV-2. We hope this brief overview can provide a good guidance and attract more attention from a broader artificial intelligence community.
机译:已经证明了计算机试验(CA)在医疗域(例如,自闭症谱,抑郁或帕金森病)和身体声音异常(例如,肠道声音,心脏杂音或打鼾声音异常的身体声音域中有效)。尽管如此,CA已经被审议的数据驱动技术被低估了用于对抗SARS-COV-2冠状病毒引起的Covid-19大流行。在这种光明中,总结了CA的最新进展,对于Covid-19语音和/或声音分析。虽然所实现的里程碑令人鼓舞,但尚未结论可以制作。这主要是,因为数据仍然稀疏,通常没有充分验证和缺乏与影响呼吸系统的相关疾病的系统比较。特别地,基于CA的方法不能是SARS-COV-2的独立筛选工具。我们希望这简要概述可以提供良好的指导并吸引更广泛的人工智能界。

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