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QUANTIFYING EMOTIONAL STATES BASED ON BODY LANGUAGE DATA USING NON INVASIVE SENSORS

机译:使用非侵入式传感器的肢体语言数据量化情绪状态

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Determining participant engagement is an important issue across a large number of fields, ranging from entertainment to education. Traditionally, feedback from participants is taken after the activity has been completed. Alternately, continuous observation by trained humans is needed. Thus, there is a need for an automated real time solution. In this paper, the authors propose a data mining driven approach that models a participant's engagement, based on body language data acquired in real time using non-invasive sensors. Skeletal position data, that approximates human body motions, is acquired from participants using off the shelf, non-invasive sensors. Thereafter, machine learning techniques are employed to detect body language patterns representing emotions such as delight, interest, boredom, frustration, and confusion. The methodology proposed in this paper enables researchers to predict the participants' engagement levels in real time with high accuracy above 98%. A case study involving human participants enacting eight body language poses, is used to illustrate the effectiveness of the methodology. Finally, this methodology highlights the potential of a real time, automated engagement detection using non-invasive sensors which can ultimately have applications in a large variety of areas such as lectures, gaming and classroom learning.
机译:确定参与者的参与是在大量领域的重要课题,从娱乐到教育。传统上,活动完成后,参与者的反馈取。或者,需要由受过训练的人持续观察。因此,需要一种自动的实时溶液。在本文中,作者提出的模型参与者的参与,根据身体语言数据使用非侵入性传感器实时获取数据挖掘驱动的方法。骨骼的位置数据,近似于人体运动,从使用现成的,非侵入性传感器参与者获得的。此后,机器学习技术被用来检测代表情绪,如愉快,兴趣,厌倦,挫折和混乱的身体语言模式。本文提出的方法,使研究人员能够以高精确度在98%以上,以实时预测参与者的参与程度。涉及人类受试者制定8个身体语言姿态为例,来说明该方法的有效性。最后,这种方法的亮点实时的潜力,利用它最终能有这样的讲座,游戏和课堂学习了大量的各种领域中的应用非侵入传感器的自动啮合检测。

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