Exo-Plore: Exploring Exoskeleton Control Space through Human-aligned Simulation
Geonho Leem, Jaedong Lee, Jehee Lee, Seungmoon Song, Jungdam Won
摘要
Exoskeletons show great promise for enhancing mobility, but providing appropriate assistance remains challenging due to the complexity of human adaptation to external forces. Current state-of-the-art approaches for optimizing exoskeleton controllers require extensive human experiments in which participants must walk for hours, creating a paradox: those who could benefit most from exoskeleton assistance, such as individuals with mobility impairments, are rarely able to participate in such demanding procedures. We present Exo-plore, a simulation framework that combines neuromechanical simulation with deep reinforcement learning to optimize hip exoskeleton assistance without requiring real human experiments. Exo-plore can (1) generate realistic gait data that captures human adaptation to assistive forces, (2) produce reliable optimization results despite the stochastic nature of human gait, and (3) generalize to pathological gaits, showing strong linear relationships between pathology severity and optimal assistance 1 .
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- Bidirectional GaitNet: A Bidirectional Prediction Model of Human Gait and Anatomical ConditionsJungnam Park, Moon Seok Park, Jehee Lee, Jungdam WonSIGGRAPH 2023 · 被引用 8 次
- MAGNET: Muscle Activation Generation Networks for Diverse Human MovementJungnam Park, Euikyun Jung, Jehee Lee, Jungdam WonSIGGRAPH 2025 · 被引用 3 次
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