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Emotional states recognition, implementing a low computational complexity strategy

机译:情绪状态的识别,实施低计算复杂性战略

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This article describes a methodology to recognize emotional states through an electroencephalography signals analysis, developed with the premise of reducing the computational burden that is associated with it, implementing a strategy that reduces the amount of data that must be processed by establishing a relationship between electrodes and Brodmann regions, so as to discard electrodes that do not provide relevant information to the identification process. Also some design suggestions to carry out a pattern recognition process by low computational complexity neural networks and support vector machines are presented, which obtain up to a 90.2% mean recognition rate.
机译:本文介绍了一种通过脑电图信号分析来识别情绪状态的方法,该前提是通过减少与它相关的计算负担的前提,实现减少必须通过建立电极之间的关系来处理的数据量的策略 Brodmann地区,以便丢弃不提供相关信息的电极到识别过程。 还提出了一种通过低计算复杂性神经网络进行模式识别过程的一些设计建议,其出现了高达90.2%的平均识别率。

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