Multimodal Technologies for Remote Assessment of Neurological and Mental Health.

IF 2.2 2区 医学 Q1 AUDIOLOGY & SPEECH-LANGUAGE PATHOLOGY
Vikram Ramanarayanan
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引用次数: 0

Abstract

Purpose: Automated remote assessment and monitoring of patients' neurological and mental health is increasingly becoming an essential component of the digital clinic and telehealth ecosystem, especially after the COVID-19 pandemic. This review article reviews various modalities of health information that are useful for developing such remote clinical assessments in the real world at scale.

Approach: We first present an overview of the various modalities of health information-speech acoustics, natural language, conversational dynamics, orofacial or full body movement, eye gaze, respiration, cardiopulmonary, and neural-which can each be extracted from various signal sources-audio, video, text, or sensors. We further motivate their clinical utility with examples of how information from each modality can help us characterize how different disorders affect different aspects of patients' spoken communication. We then elucidate the advantages of combining one or more of these modalities toward a more holistic, informative, and robust assessment.

Findings: We find that combining multiple modalities of health information allows for improved scientific interpretability, improved performance on downstream health applications such as early detection and progress monitoring, improved technological robustness, and improved user experience. We illustrate how these principles can be leveraged for remote clinical assessment at scale using a real-world case study of the Modality assessment platform.

Conclusion: This review article motivates the combination of human-centric information from multiple modalities to measure various aspects of patients' health, arguing that remote clinical assessment that integrates this complementary information can be more effective and lead to better clinical outcomes than using any one data stream in isolation.

用于远程评估神经和精神健康的多模式技术。
目的:自动远程评估和监测患者的神经和精神健康正日益成为数字诊所和远程医疗生态系统的重要组成部分,尤其是在 COVID-19 大流行之后。这篇综述文章回顾了有助于在现实世界中大规模开展此类远程临床评估的各种健康信息模式:我们首先概述了各种健康信息模式--语音声学、自然语言、会话动态、口面部或全身运动、眼睛注视、呼吸、心肺功能和神经--它们都可以从各种信号源(音频、视频、文本或传感器)中提取。我们通过举例说明每种模式的信息如何帮助我们确定不同的疾病如何影响患者口语交流的不同方面,从而进一步激发它们的临床实用性。然后,我们阐释了将一种或多种模式结合在一起进行更全面、更丰富、更稳健的评估的优势:我们发现,结合多种健康信息模式可以提高科学可解释性,改善下游健康应用(如早期检测和进展监测)的性能,提高技术稳健性,改善用户体验。我们通过对模态评估平台的实际案例研究,说明了如何利用这些原则进行大规模远程临床评估:这篇综述文章鼓励将来自多种模式的以人为本的信息结合起来,以测量患者健康的各个方面,并认为与单独使用任何一种数据流相比,整合了这些互补信息的远程临床评估可以更有效,并带来更好的临床结果。
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来源期刊
Journal of Speech Language and Hearing Research
Journal of Speech Language and Hearing Research AUDIOLOGY & SPEECH-LANGUAGE PATHOLOGY-REHABILITATION
CiteScore
4.10
自引率
19.20%
发文量
538
审稿时长
4-8 weeks
期刊介绍: Mission: JSLHR publishes peer-reviewed research and other scholarly articles on the normal and disordered processes in speech, language, hearing, and related areas such as cognition, oral-motor function, and swallowing. The journal is an international outlet for both basic research on communication processes and clinical research pertaining to screening, diagnosis, and management of communication disorders as well as the etiologies and characteristics of these disorders. JSLHR seeks to advance evidence-based practice by disseminating the results of new studies as well as providing a forum for critical reviews and meta-analyses of previously published work. Scope: The broad field of communication sciences and disorders, including speech production and perception; anatomy and physiology of speech and voice; genetics, biomechanics, and other basic sciences pertaining to human communication; mastication and swallowing; speech disorders; voice disorders; development of speech, language, or hearing in children; normal language processes; language disorders; disorders of hearing and balance; psychoacoustics; and anatomy and physiology of hearing.
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