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通过脑电图和机器学习寻找慢性疼痛的复合生物标志物:我们目前的进展如何?

In search of a composite biomarker for chronic pain by way of EEG and machine learning: where do we currently stand?

作者信息

Rockholt Mika M, Kenefati George, Doan Lisa V, Chen Zhe Sage, Wang Jing

机构信息

Department of Anesthesiology, Perioperative Care and Pain Management, New York University Grossman School of Medicine, New York, NY, United States.

Department of Psychiatry, New York University Grossman School of Medicine, New York, NY, United States.

出版信息

Front Neurosci. 2023 Jun 14;17:1186418. doi: 10.3389/fnins.2023.1186418. eCollection 2023.

Abstract

Machine learning is becoming an increasingly common component of routine data analyses in clinical research. The past decade in pain research has witnessed great advances in human neuroimaging and machine learning. With each finding, the pain research community takes one step closer to uncovering fundamental mechanisms underlying chronic pain and at the same time proposing neurophysiological biomarkers. However, it remains challenging to fully understand chronic pain due to its multidimensional representations within the brain. By utilizing cost-effective and non-invasive imaging techniques such as electroencephalography (EEG) and analyzing the resulting data with advanced analytic methods, we have the opportunity to better understand and identify specific neural mechanisms associated with the processing and perception of chronic pain. This narrative literature review summarizes studies from the last decade describing the utility of EEG as a potential biomarker for chronic pain by synergizing clinical and computational perspectives.

摘要

机器学习正日益成为临床研究中常规数据分析的常见组成部分。过去十年,疼痛研究领域在人类神经影像学和机器学习方面取得了巨大进展。每一项发现都让疼痛研究界离揭示慢性疼痛的基本机制更近一步,同时也提出了神经生理学生物标志物。然而,由于慢性疼痛在大脑中的多维表现,要全面理解它仍然具有挑战性。通过利用脑电图(EEG)等经济高效且非侵入性的成像技术,并使用先进的分析方法分析所得数据,我们有机会更好地理解和识别与慢性疼痛的处理和感知相关的特定神经机制。这篇叙述性文献综述总结了过去十年的研究,这些研究从临床和计算角度协同描述了脑电图作为慢性疼痛潜在生物标志物的效用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f0b0/10301750/d9d198f6e0fa/fnins-17-1186418-g001.jpg

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