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Brain functional connectivity patterns for emotional state classification in Parkinson's disease patients without dementia

机译:帕金森氏病无痴呆患者的情绪状态分类的大脑功能连接模式

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Successful emotional communication is crucial for social interactions and social relationships. Parkinson's Disease (PD) patients have shown deficits in emotional recognition abilities although the research findings are inconclusive. This paper presents an investigation of six emotions (happiness, sadness, fear, anger, surprise, and disgust) of twenty non-demented (Mini-Mental State Examination score >24) PD patients and twenty Healthy Controls (HCs) using Electroencephalogram (EEG)-based Brain Functional Connectivity (BFC) patterns. The functional connectivity index feature in EEG signals is computed using three different methods: Correlation (COR), Coherence (COH), and Phase Synchronization Index (PSI). Further, a new functional connectivity index feature is proposed using bispectral analysis. The experimental results indicate that the BFC change is significantly different among emotional states of PD patients compared with HC. Also, the emotional connectivity pattern classified using Support Vector Machine (SVM) classifier yielded the highest accuracy for the new bispectral functional connectivity index. The PD patients showed emotional impairments as demonstrated by a poor classification performance. This finding suggests that decrease in the functional connectivity indices during emotional stimulation in PD, indicating functional disconnections between cortical areas. (C) 2015 Published by Elsevier B.V.
机译:成功的情感交流对于社交互动和社会关系至关重要。尽管研究结果尚无定论,但帕金森氏病(PD)患者已表现出情绪识别能力不足。本文使用脑电图(EEG)对20名未痴呆的(轻度精神状态检查评分> 24)PD患者和20名健康对照(HCs)的6种情绪(幸福,悲伤,恐惧,愤怒,惊奇和厌恶)进行了调查)的大脑功能连接(BFC)模式。使用三种不同的方法来计算EEG信号中的功能连通性指数特征:相关性(COR),相干性(COH)和相位同步指数(PSI)。此外,使用双光谱分析提出了一种新的功能连通性指数特征。实验结果表明,与HC相比,PD患者情绪状态的BFC变化显着不同。同样,使用支持向量机(SVM)分类器分类的情感连接模式为新的双光谱功能连接指数产生了最高的准确性。 PD患者表现出情感障碍,如不良分类表现所证明。该发现表明PD中的情绪刺激期间功能连接指数的降低,表明皮质区域之间的功能断开。 (C)2015由Elsevier B.V.发布

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