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Detection of signaling pathways in human brain during arousal of specific emotion

机译:激发特定情绪时人脑中信号通路的检测

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Neuroscientists usually determine similarity between EEG electrode signals, by a measure of pairwise linear dependence among them. However, recent research indicates the drawbacks of analyzing the pairwise dependence of signals instead of analyzing the simultaneous joint interdependence among them. To overcome this problem we propose a novel similarity measure known as probabilistic relative correlation. Our approach is unique because our similarity measure allows the electrodes to have probabilistic similarity measures and recognizes emotion dependent structures even from mismatched sequences of correlation. We further validate our proposed similarity measure by testing it on the well-known emotion recognition problem. Our experiments have noteworthy implications towards realizing the neural signatures of discrete emotions and will allow for the better understanding of neurological pathways associated with different emotional states. To identify the most active neurological pathways in brain during an emotion, we adapt the minimal spanning tree algorithm.
机译:神经科学家通常通过测量脑电信号之间的成对线性相关性来确定它们之间的相似性。然而,最近的研究表明分析信号的成对依赖性而不是分析它们之间的联合联合依赖性的缺点。为了克服这个问题,我们提出了一种新的相似性度量,称为概率相对相关。我们的方法是独特的,因为我们的相似性度量允许电极具有概率相似性度量,甚至可以从不匹配的相关序列中识别依赖于情感的结构。通过在众所周知的情绪识别问题上进行测试,我们进一步验证了我们提出的相似性度量。我们的实验对实现离散情绪的神经特征具有值得注意的意义,并将使人们更好地理解与不同情绪状态相关的神经系统途径。为了确定情绪中大脑中最活跃的神经系统通路,我们采用了最小生成树算法。

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