Abnormal Emotion Detection of Tennis Players by Using Physiological Signal and Mobile Computing

Xiaoyan Sun
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Abstract

Emotion is an important research topic in the field of sports. The physiological changes caused by emotion have a great influence on the completion of sports. It cannot only fully mobilize the organism and maximize the exercise potential, but also lead to muscle stiffness, movement deformation or muscle contraction weakness. Furthermore, it can affect the completion of exercise. In order to ensure the athlete can keep the best competitive level, it is necessary to estimate the athlete’s emotion before competition. This paper adopts the pulse wave signal to implement the emotion estimation for the athletes. First, the pulse wave signals are collected by using a portable sensor via mobile computing. Then, the collected pulse wave signals are removed noises by wavelet transform. Last, the denoised pulse wave signals are represented as the features in time domain and frequency domain to input into a trained classifier for determining the current emotion status. The experimental results show that the proposed method can recognize more than 90% of the abnormal emotion.
基于生理信号和移动计算的网球运动员异常情绪检测
情感是体育领域的一个重要研究课题。情绪引起的生理变化对运动的完成有很大的影响。它既不能充分调动机体,最大限度地发挥运动潜能,也会导致肌肉僵硬、运动变形或肌肉收缩无力。此外,它还会影响运动的完成。为了保证运动员能够保持最佳的竞技水平,有必要对运动员赛前的情绪进行评估。本文采用脉冲波信号对运动员进行情绪估计。首先,通过移动计算,利用便携式传感器采集脉冲波信号。然后对采集到的脉冲信号进行小波变换去噪。最后,将降噪后的脉冲波信号分别表示为时域和频域特征,输入到训练好的分类器中,用于判断当前情绪状态。实验结果表明,该方法可以识别90%以上的异常情绪。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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