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使用多模态传感信号进行人体疼痛客观评估的实验探索

Experimental Exploration of Objective Human Pain Assessment Using Multimodal Sensing Signals.

作者信息

Lin Yingzi, Xiao Yan, Wang Li, Guo Yikang, Zhu Wenchao, Dalip Biren, Kamarthi Sagar, Schreiber Kristin L, Edwards Robert R, Urman Richard D

机构信息

Intelligent Human Machine Systems Laboratory, College of Engineering, Northeastern University, Boston, MA, United States.

College of Nursing and Health Innovation, University of Texas at Arlington, Arlington, TX, United States.

出版信息

Front Neurosci. 2022 Feb 11;16:831627. doi: 10.3389/fnins.2022.831627. eCollection 2022.

Abstract

Optimization of pain assessment and treatment is an active area of research in healthcare. The purpose of this research is to create an objective pain intensity estimation system based on multimodal sensing signals through experimental studies. Twenty eight healthy subjects were recruited at Northeastern University. Nine physiological modalities were utilized in this research, namely facial expressions (FE), electroencephalography (EEG), eye movement (EM), skin conductance (SC), and blood volume pulse (BVP), electromyography (EMG), respiration rate (RR), skin temperature (ST), blood pressure (BP). Statistical analysis and machine learning algorithms were deployed to analyze the physiological data. FE, EEG, SC, BVP, and BP proved to be able to detect different pain states from healthy subjects. Multi-modalities proved to be promising in detecting different levels of painful states. A decision-level multi-modal fusion also proved to be efficient and accurate in classifying painful states.

摘要

疼痛评估与治疗的优化是医疗保健领域一个活跃的研究领域。本研究的目的是通过实验研究创建一个基于多模态传感信号的客观疼痛强度估计系统。东北大学招募了28名健康受试者。本研究使用了九种生理模态,即面部表情(FE)、脑电图(EEG)、眼动(EM)、皮肤电导率(SC)、血容量脉搏(BVP)、肌电图(EMG)、呼吸频率(RR)、皮肤温度(ST)、血压(BP)。采用统计分析和机器学习算法对生理数据进行分析。结果证明,面部表情、脑电图、皮肤电导率、血容量脉搏和血压能够检测出健康受试者的不同疼痛状态。多模态在检测不同程度的疼痛状态方面被证明具有潜力。决策级多模态融合在疼痛状态分类方面也被证明是高效且准确的。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f448/8874020/af824ca20973/fnins-16-831627-g001.jpg

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