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Human-in-the-loop Bayesian optimization of wearable device parameters

机译:可穿戴设备参数的人在回路贝叶斯优化

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摘要

The increasing capabilities of exoskeletons and powered prosthetics for walking assistance have paved the way for more sophisticated and individualized control strategies. In response to this opportunity, recent work on human-in-the-loop optimization has considered the problem of automatically tuning control parameters based on realtime physiological measurements. However, the common use of metabolic cost as a performance metric creates significant experimental challenges due to its long measurement times and low signal-to-noise ratio. We evaluate the use of Bayesian optimization—a family of sample-efficient, noise-tolerant, and global optimization methods—for quickly identifying near-optimal control parameters. To manage experimental complexity and provide comparisons against related work, we consider the task of minimizing metabolic cost by optimizing walking step frequencies in unaided human subjects. Compared to an existing approach based on gradient descent, Bayesian optimization identified a near-optimal step frequency with a faster time to convergence (12 minutes, p < 0.01), smaller inter-subject variability in convergence time (± 2 minutes, p < 0.01), and lower overall energy expenditure (p < 0.01).
机译:外骨骼和动力假肢行走辅助功能的不断增强,为更复杂和个性化的控制策略铺平了道路。为响应这一机会,最近在环上进行人为优化的工作考虑了基于实时生理测量值自动调整控制参数的问题。但是,由于代谢时间长,测量时间长,信噪比低,因此将代谢成本作为性能指标普遍使用会带来巨大的实验挑战。我们评估了贝叶斯优化(一种有效的采样,耐噪声和全局优化方法系列)的使用,以快速识别接近最佳的控制参数。为了管理实验的复杂性并提供与相关工作的比较,我们考虑了通过优化无助对象的步行频率来最小化代谢成本的任务。与基于梯度下降的现有方法相比,贝叶斯优化确定了接近最优的步频,具有更快的收敛时间(12分钟,p <0.01),受试者间的变化时间更短(±2分钟,p <0.01) ),并降低整体能源消耗(p <0.01)。

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