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Stress detection in computer users through non-invasive monitoring of physiological signals.

机译:通过对生理信号的非侵入式监视,在计算机用户中进行压力检测。

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he emerging discipline of Affective Computing pursues the development of computers that could interact with their users taking their affective states into account. For example, if a computer could detect when its user is experiencing stress, it could change the colors and sounds of its user interface to try to calm him/her down. Similarly, the pace of instruction in a computer-based training system could be adapted according to the stress level sensed in the pupil. The research described in this paper aims at the development of a stress detection approach based on automatic monitoring of physiological signals in the computer user. The paper describes the three main aspects of our work: experiment setup for physiological sensing, signal processing to detect the affective state and affective recognition using a learning system. Four signals: Galvanic Skin Response (GSR), Blood Volume Pulse (BVP), Pupil Diameter (PD) and Skin Temperature (ST) are monitored and analyzed to differentiate affective states inthe user, in a non-invasive fashion. Results indicate that the physiological signals monitored do, in fact, have a strong correlation with the changes in emotional state of our experimental subjects when stress stimuli are applied to the interaction environment.
机译:新兴的情感计算学科致力于开发可以与用户互动的计算机,并考虑其情感状态。例如,如果计算机可以检测到用户何时承受压力,它可以更改其用户界面的颜色和声音以尝试使他/她平静下来。类似地,可以根据在瞳孔中感测到的压力水平来调整基于计算机的训练系统中的教学节奏。本文所述的研究旨在基于计算机用户中生理信号的自动监控,开发一种压力检测方法。本文介绍了我们工作的三个主要方面:用于生理感应的实验设置,用于检测情感状态的信号处理以及使用学习系统进行情感识别的方法。监视和分析四个信号:电皮肤反应(GSR),血容量脉冲(BVP),瞳孔直径(PD)和皮肤温度(ST),以非侵入方式区分用户的情感状态。结果表明,当将压力刺激应用于相互作用环境时,所监测的生理信号确实与我们实验对象的情绪状态变化密切相关。

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