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Design of Prototype-Based Emotion Recognizer Using Physiological Signals

机译:基于生理信号的基于原型的情绪识别器的设计

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This study is related to the acquisition of physiological signals of human emotions and the recognition of human emotions using such physiological signals. To acquire physiological signals, seven emotions are evoked through stimuli. Regarding the induced emotions, the results of skin temperature, photoplethysmography, electrodermal activity, and an electrocardiogram are recorded and analyzed as physiological signals. The suitability and effectiveness of the stimuli are evaluated by the subjects themselves. To address the problem of the emotions not being recognized, we introduce a methodology for a recognizer using prototype-based learning and particle swarm optimization (PSO). The design involves two main phases: i) PSO selects the P% of the patterns to be treated as prototypes of the seven emotions; ii) PSO is instrumental in the formation of the core set of features. The experiments show that a suitable selection of prototypes and a substantial reduction of the feature space can be accomplished, and the recognizer formed in this manner is characterized by high recognition accuracy for the seven emotions using physiological signals.
机译:这项研究与人类情绪的生理信号的获取以及利用这种生理信号的人类情绪的识别有关。为了获得生理信号,通过刺激唤起了七种情绪。关于诱发的情绪,记录皮肤温度,光电容积描记法,皮肤电活动和心电图的结果,并作为生理信号进行分析。刺激的适用性和有效性由受试者自己评估。为了解决无法识别情绪的问题,我们为识别器引入了一种基于原型学习和粒子群优化(PSO)的方法。设计涉及两个主要阶段:i)PSO选择模式的P%作为七种情感的原型; ii)PSO有助于形成核心功能集。实验结果表明,原型和特征空间大幅度减少的合适的选择可以被完成的,以及用于使用生理信号七情以这种方式形成的识别器的特征在于高的识别精度。

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