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基于机器学习的眩晕与头晕鉴别诊断技术:综述

Machine Learning Techniques for Differential Diagnosis of Vertigo and Dizziness: A Review.

机构信息

Department of Textile Technology, Indian Institute of Technology Delhi, New Delhi 110016, India.

Department of Computer Science and Engineering, Indian Institute of Technology Delhi, New Delhi 110016, India.

出版信息

Sensors (Basel). 2021 Nov 14;21(22):7565. doi: 10.3390/s21227565.

Abstract

Vertigo is a sensation of movement that results from disorders of the inner ear balance organs and their central connections, with aetiologies that are often benign and sometimes serious. An individual who develops vertigo can be effectively treated only after a correct diagnosis of the underlying vestibular disorder is reached. Recent advances in artificial intelligence promise novel strategies for the diagnosis and treatment of patients with this common symptom. Human analysts may experience difficulties manually extracting patterns from large clinical datasets. Machine learning techniques can be used to visualize, understand, and classify clinical data to create a computerized, faster, and more accurate evaluation of vertiginous disorders. Practitioners can also use them as a teaching tool to gain knowledge and valuable insights from medical data. This paper provides a review of the literatures from 1999 to 2021 using various feature extraction and machine learning techniques to diagnose vertigo disorders. This paper aims to provide a better understanding of the work done thus far and to provide future directions for research into the use of machine learning in vertigo diagnosis.

摘要

眩晕是一种运动感觉,源于内耳平衡器官及其中枢连接的紊乱,其病因通常是良性的,有时也很严重。只有在明确诊断出潜在的前庭障碍后,才能对出现眩晕的个体进行有效治疗。人工智能的最新进展有望为这类常见症状的患者提供新的诊断和治疗策略。人类分析师可能难以手动从大型临床数据集中提取模式。机器学习技术可用于可视化、理解和分类临床数据,从而创建一种计算机化、更快、更准确的眩晕障碍评估方法。从业者也可以将其用作教学工具,从医疗数据中获取知识和有价值的见解。本文综述了 1999 年至 2021 年使用各种特征提取和机器学习技术来诊断眩晕障碍的文献。本文旨在更好地了解迄今为止所做的工作,并为未来在眩晕诊断中使用机器学习的研究提供方向。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/280f/8621477/57babee557a5/sensors-21-07565-g001.jpg

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