Self-paced heart rate control for treadmill exercise

Hanjie Wang, K. Hunt
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Abstract

Introduction: With conventional heart rate (HR) control systems, the exercising person is bound to walk or run at a pace determined by the feedback. This may be challenging for people with impairments that make it difficult for them to achieve a smooth, continuous pace. The aim of this work was to assess the technical feasibility of a novel self-paced heart rate control strategy and to compare its accuracy with conventional heart rate control. Methods: We propose a self-paced heart rate control system that embeds an automatic positioning controller within the heart rate control loop. The treadmill speed command is decoupled from the heart rate compensator, whereas speed is determined by the exerciser’s own volition: target speed is displayed visually to the person and, when they try to follow this target, the position controller sets the treadmill speed while keeping the person at a safe reference position on the track. A further novel contribution of this work is a new input-sensitivity-shaping, frequency-domain design strategy for feedback control of position. Results: Experimental evaluation with four participants showed that self-paced heart rate control is technically feasible: all participants were able to accurately follow the target running speed calculated by the HR compensator and presented to them visually; for all four participants, self-paced HR tracking accuracy was not substantially different from conventional HR control performance; on average, the self-paced heart rate controller gave slightly better performance than conventional HR control, with RMS tracking error of 2.98 beats per minute (bpm) vs 3.11 bpm and higher average control signal power. Conclusion: The proposed self-paced heart rate control strategy with embedded automatic position control is deemed feasible. This approach may be helpful for people with gait impairments or other limitations that make it difficult for them to follow an imposed treadmill speed.
跑步机运动的自定速心率控制
引言:使用传统的心率(HR)控制系统,锻炼者一定会按照反馈决定的速度行走或跑步。这对有障碍的人来说可能是一个挑战,使他们难以实现平稳、持续的步伐。这项工作的目的是评估一种新型自定速心率控制策略的技术可行性,并将其准确性与传统心率控制进行比较。方法:我们提出了一种在心率控制回路中嵌入自动定位控制器的自定步心率控制系统。跑步机速度命令与心率补偿器解耦,而速度由锻炼者自己的意愿决定:目标速度在视觉上显示给人,当他们试图遵循这个目标时,位置控制器设置跑步机速度,同时将人保持在跑道上的安全参考位置。这项工作的另一个新颖贡献是一种用于位置反馈控制的新的输入灵敏度整形频域设计策略。结果:对四名参与者的实验评估表明,自定速心率控制在技术上是可行的:所有参与者都能够准确地遵循HR补偿器计算的目标跑步速度,并直观地呈现给他们;对于所有四名参与者,自定节奏的人力资源跟踪准确性与传统的人力资源控制表现没有实质性差异;平均而言,自定速心率控制器的性能略好于传统的HR控制,RMS跟踪误差为2.98次/分(bpm)vs 3.11次/分,平均控制信号功率更高。结论:所提出的嵌入式自动位置控制的自定步心率控制策略是可行的。这种方法可能有助于有步态障碍或其他限制的人,这些限制使他们难以遵循规定的跑步机速度。
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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