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Machine learning approaches used to analyze auditory evoked responses from the human auditory brainstem: A systematic review

机器学习 计算机科学 听觉脑干反应 人工智能 系统回顾 斯科普斯 支持向量机 过程(计算) 人工神经网络 领域(数学分析) 梅德林 医学 听力损失 听力学 数学分析 操作系统 法学 数学 政治学
作者
Hasitha Wimalarathna,Sangamanatha Ankmnal Veeranna,Chris Allan,Sumit K. Agrawal,Jagath Samarabandu,Hanif M. Ladak,Prudence Allen
出处
期刊:Computer Methods and Programs in Biomedicine [Elsevier BV]
卷期号:226: 107118-107118 被引量:8
标识
DOI:10.1016/j.cmpb.2022.107118
摘要

The application of machine learning algorithms for assessing the auditory brainstem response has gained interest over recent years with a considerable number of publications in the literature. In this systematic review, we explore how machine learning has been used to develop algorithms to assess auditory brainstem responses. A clear and comprehensive overview is provided to allow clinicians and researchers to explore the domain and the potential translation to clinical care.The systematic review was performed based on PRISMA guidelines. A search was conducted of PubMed, IEEE-Xplore, and Scopus databases focusing on human studies that have used machine learning to assess auditory brainstem responses. The duration of the search was from January 1, 1990, to April 3, 2021. The Covidence systematic review platform (www.covidence.org) was used throughout the process.A total of 5812 studies were found through the database search and 451 duplicates were removed. The title and abstract screening process further reduced the article count to 89 and in the proceeding full-text screening, 34 articles met our full inclusion criteria.Three categories of applications were found, namely neurologic diagnosis, hearing threshold estimation, and other (does not relate to neurologic or hearing threshold estimation). Neural networks and support vector machines were the most commonly used machine learning algorithms in all three categories. Only one study had conducted a clinical trial to evaluate the algorithm after development. Challenges remain in the amount of data required to train machine learning models. Suggestions for future research avenues are mentioned with recommended reporting methods for researchers.
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