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Fuzzy System-Based Fear Estimation Based on the Symmetrical Characteristics of Face and Facial Feature Points

机译:基于面部和面部特征点对称特征的基于模糊系统的恐惧估计

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The application of user emotion recognition for fear is expanding in various fields, including the quantitative evaluation of horror movies, dramas, advertisements, games, and the monitoring of emergency situations in convenience stores (i.e., a clerk threatened by a robber), in addition to criminal psychology. Most of the existing methods for the recognition of fear involve referring to a single physiological signal or recognizing circumstances in which users feel fear by selecting the most informative one among multiple physiological signals. However, the level of accuracy as well as the credibility of these study methods is low. Therefore, in this study, data with high credibility were obtained using non-intrusive multimodal sensors of near-infrared and far-infrared light cameras and selected based on t -tests and Cohen’s d analysis considering the symmetrical characteristics of face and facial feature points. The selected data were then combined into a fuzzy system using the input and output membership functions of symmetrical shape to ultimately derive a new method that can quantitatively show the level of a user’s fear. The proposed method is designed to enhance conventional subjective evaluation (SE) by fuzzy system based on multi-modalities. By using four objective features except for SE and combining these four features into a fuzzy system, our system can produce an accurate level of fear without being affected by the physical, psychological, or fatigue condition of the participants in SE. After conducting a study on 20 subjects of various races and genders, the results indicate that the new method suggested in this study has a higher level of credibility for the recognition of fear than the methods used in previous studies.
机译:用户情绪识别技术在恐惧中的应用正在各个领域中扩展,包括对恐怖电影,戏剧,广告,游戏的定量评估,以及便利店(即受强盗威胁的店员)中紧急情况的监视。犯罪心理学。现有的大多数用于识别恐惧的方法都涉及参考单个生理信号或通过在多个生理信号中选择信息量最大的一种来识别用户感到恐惧的情况。但是,这些研究方法的准确性和可信度很低。因此,在这项研究中,使用近红外和远红外摄像头的非侵入式多模态传感器获得了高度可信的数据,并基于t检验和Cohen d分析(考虑到面部和面部特征点的对称特征)进行了选择。然后,使用对称形状的输入和输出隶属函数将选定的数据组合到一个模糊系统中,最终得出一种新方法,该方法可以定量显示用户的恐惧程度。该方法旨在通过基于多模态的模糊系统增强传统的主观评价。通过使用SE以外的四个客观特征并将这四个特征组合到模糊系统中,我们的系统可以产生准确的恐惧水平,而不受SE参与者的身体,心理或疲劳状况的影响。在对20个不同种族和性别的受试者进行了研究之后,结果表明,该研究中提出的新方法比以前的研究中使用的方法在识别恐惧方面具有更高的可信度。

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