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Analysis of Indonesian sentiment text based on affective space model (ASM) using electroencephalogram (EEG) signals

机译:基于脑电图(EEG)信号的基于情感空间模型(ASM)的印尼情感文本分析

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The affective space model (ASM) based on the valence and arousal (VA) has been used by many researchers in determining the emotional state of an individual. Psychologist uses the self assessment maniquin (SAM) while other researchers uses the facial patterns, voice emotions and also electroencephalogram (EEG) signals to obtain the category of Sentiment analysis (SA) based on VA as the two dimensional approach represents affective state. However, getting affective words with VA scores are still infrequently used, even though these VA lexicon are advantageous resource in creating application of sentiment, especially in the Indonesian language and can be used as a corpus for SA. Thus this paper proposes to design and analyze Indonesian affective lexicons based on affective norm english word (ANEW) for automatic determination of VA rating of words. In this research, we proposed to develop an extensive number of sentiment states in Indonesian language that have been placed in terms of VA using SAM and would be correlated with EEG as a comprehensive tool of Neuro Physiological Signal for the emotion sentiment corpus rating.
机译:许多研究人员已使用基于价和唤醒(VA)的情感空间模型(ASM)来确定个人的情绪状态。心理学家使用自我评估人体模型(SAM),而其他研究人员则使用面部表情,语音情感以及脑电图(EEG)信号来获取基于VA的情感分析(SA)类别,因为二维方法代表情感状态。但是,即使这些VA词典是创建情感应用程序的有利资源,尤其是印尼语,并且可以用作SA的语料库,但仍很少使用带有VA分数的情感词。因此,本文建议基于情感规范英语单词(ANEW)设计和分析印尼情感词典,以自动确定单词的VA等级。在这项研究中,我们建议使用SAM开发广泛的印尼语情感状态,这些情感状态已通过VA进行了VA定位,并将与EEG相关联,作为神经生理信号对情感情感语料库评级的综合工具。

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