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Sensor signal processing to extract features from finger temperature in a case-based stress classification scheme

机译:传感器信号处理以在基于案例的应力分类方案中从手指温度提取特征

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摘要

One of the physiological parameters for quantifying stress levels is the finger temperature that helps the clinician in diagnosis and treatment of stress. However, this pattern of the finger temperature sensor signal is so individual and in practice, it is difficult and tedious even for experienced clinicians to interpret and analyze the signal to classify individual stress levels. So there is an inherent need to develop methods or techniques providing computational solution to utilize this sensor signal in a computer-based system. This paper presents a feature extraction approach based on finger temperature sensor signal. The extracted features are then used to formulate cases in a case-based reasoning system to classify individual sensitivity to stress. The evaluation result shows an encouraging performance to apply the approach in feature extraction from slowly changing sensor signals such as finger temperature signal.
机译:用于量化应力水平的生理参数之一是有助于临床医生在诊断和治疗应激的手指温度。然而,这种手指温度传感器信号的模式是个体和实践,即使对于经验丰富的临床医生来说,难以繁琐的临床医生解释和分析信号以分类单个应力水平。因此,存在所固有的需要开发提供计算解决方案的方法或技术,以在基于计算机的系统中利用该传感器信号。本文介绍了一种基于手指温度传感器信号的特征提取方法。然后,提取的特征用于在基于案例的推理系统中制定病例,以将个体敏感性分类到应力。评估结果显示了一种令人鼓舞的性能,可以在特征提取中应用方法从缓慢改变传感器信号,例如手指温度信号。

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