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Nonlinear Methodologies Applied to Automatic Recognition of Emotions: An EEG Review

机译:非线性方法应用于自动识别情绪:脑电图综述

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Development of algorithms for automatic detection of emotions is essential to improve affective skills of human-computer interfaces. In the literature, a wide variety of linear methodologies have been applied with the aim of defining the brain's performance under different emotional states. Nevertheless, recent findings have demonstrated the nonlinear and dynamic behavior of the brain. Thus, the use of nonlinear analysis techniques has notably increased, reporting promising results with respect to traditional linear methods. In this sense, this work presents a review of the latest advances in the field, exploring the main nonlinear metrics used for emotion recognition from EEG recordings.
机译:用于自动检测情绪的算法的开发对于提高人机界面的情感技能至关重要。在文献中,已经应用了各种线性方法,目的是在不同情绪状态下定义大脑的表现。然而,最近发现已经证明了大脑的非线性和动态行为。因此,使用非线性分析技术已经显着增加,报告了关于传统线性方法的有希望的结果。从这个意义上讲,这项工作提出了对现场最新进展的审查,探索了来自EEG录音的情感识别的主要非线性度量。

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