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A simplified method for online extraction of skin conductance features: A pilot study on an immersive virtual-reality-based motor task

机译:在线提取皮肤电导特征的一种简化方法:基于沉浸式虚拟现实的运动任务的初步研究

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There is a growing body of literature that recognizes the importance of Skin Conductance (SC) for assessing changes in emotional states, such as engagement to learning tasks, and its importance to estimate possible drawbacks affecting overall performance. To date, most of the commonly used methods for SC signal analysis, i.e. detecting its phasic and tonic components and thus extracting informative features, are either too simple and unreliable or too complex and thus inaccessible and inflexible, as well as unable to perform online analyses. The current work proposes a simplified but clear and effective algorithm based on a Machine State to search for expected behaviors in the well-defined morphology of the signal. Eleven (11) features were correctly extracted from 79 healthy subjects during an experimental setup for immersive virtual rehabilitation (balance study case). The method was also successfully applied as a tool to identify significant changes in the subjective psychophysiological response to different experimental conditions. These results point toward a potential role in virtual rehabilitation applications by getting real-time feedback in human-in-the-loop approaches.
机译:越来越多的文献认识到皮肤电导(SC)在评估情绪状态变化(例如参与学习任务)方面的重要性,以及在评估可能影响整体表现的缺点方面的重要性。迄今为止,用于SC信号分析的大多数常用方法(即检测其相位和张力成分并因此提取信息特征)太简单,不可靠或太复杂,因此难以访问且不灵活,并且无法执行在线分析。当前的工作提出了一种基于机器状态的简化但清晰有效的算法,以在信号的形态明确的情况下搜索预期的行为。在沉浸式虚拟康复的实验装置(平衡研究案例)中,从79位健康受试者中正确提取了十一(11)个特征。该方法还成功地用作识别主观心理生理反应对不同实验条件的重大变化的工具。这些结果通过在人环方法中获取实时反馈,指出了在虚拟康复应用中的潜在作用。

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