Fuzzy Estimation of VO2 Dynamics During Cycling Exercise

Pillt Y. Hernández, M. Melgarejo, I. S. Aguiar, Miguel A. Niño
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Abstract

One of the most important variables in cycling is the oxygen consumption (VO2) and its maximal value (‘VO2max’). The latter is considered as an appropriate indicator of the cardio-respiratory fitness and provides interesting information for many applications in the sports medicine context, however, this variable is not easy to measure out of a laboratory. Hence, this paper presents an alternative approach to the estimation of VO2 dynamics by means of fuzzy systems that use an input vector composed of three easy-to-obtain variables: Heart Rate, Work Rate, and Respiratory Rate measured in a clinical Cardiopulmonary-Exercise Testing. Two tuning strategies are compared: the well-known adaptive-network-based fuzzy inference system and an evolutionary fuzzy system based on the differential evolution algorithm. Experimental results showed that both tuning strategies are capable of providing competitive solutions in terms of several regression indices.
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自行车运动中VO2动态的模糊估计
循环中最重要的变量之一是耗氧量(VO2)及其最大值(VO2max)。后者被认为是心肺健康的适当指标,并为运动医学中的许多应用提供了有趣的信息,然而,这个变量不容易在实验室之外测量。因此,本文提出了一种通过模糊系统来估计VO2动态的替代方法,该系统使用由三个易于获得的变量组成的输入向量:心率,工作速率和呼吸速率,这些变量是在临床心肺运动测试中测量的。比较了两种调优策略:基于自适应网络的模糊推理系统和基于差分进化算法的进化模糊系统。实验结果表明,两种调优策略都能在多个回归指标上提供有竞争力的解。
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