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Stress detection by means of stress physiological template

机译:通过压力生理模板进行压力检测

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This paper describes a stress detection system based on fuzzy logic and two physiological signals: Galvanic Skin Response and Heart Rate. Instead of providing a global stress classification, this approach creates an individual stress templates, gathering the behaviour of individuals under situations with different degrees of stress. The proposed method is able to detect stress properly with a rate of 99.5%, being evaluated with a database of 80 individuals. This result improves former approaches in the literature and well-known machine learning techniques like SVM, k-NN, GMM and Linear Discriminant Analysis. Finally, the proposed method is highly suitable for real-time applications.
机译:本文介绍了一种基于模糊逻辑和两种生理信号的压力检测系统:皮肤电反应和心率。该方法不是提供全局压力分类,而是创建单个压力模板,收集压力程度不同的情况下的个人行为。所提出的方法能够以99.5%的比率正确检测压力,并由80个人的数据库进行评估。该结果改进了文献中的先前方法以及诸如SVM,k-NN,GMM和线性判别分析之类的著名机器学习技术。最后,所提出的方法非常适合于实时应用。

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