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February 5, 2026Biomimetics2 citationsOpen Access

Design and Evaluation of a Trunk–Limb Robotic Exoskeleton for Gait Rehabilitation in Cerebral Palsy

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HLHui LiMLMing LiZKZiwei Kang

Key Points

  • The aim is to design and evaluate a trunk-limb exoskeleton that improves gait rehabilitation outcomes in children with cerebral palsy by integrating trunk and limb support.
  • Developed a self-aligning trunk–limb exoskeleton with lower-limb and trunk support.
  • Implemented a multi-joint control framework based on continuous gait progress.
  • Conducted kinematic misalignment analysis and simulation validation.
  • Performed gait trials to assess gait parameter improvement.
  • Achieved a 66.8% reduction in hip misalignment.
  • Observed an 87.4% reduction in knee misalignment.
  • Gait parameters under exoskeleton assistance closely matched baseline walking.
  • Confirmed that kinematic preservation occurs without interference.

Abstract

Most pediatric exoskeletons for cerebral palsy (CP) focus on lower-limb assistance and neglect trunk control, limiting rehabilitation outcomes. This study presents a self-aligning trunk–limb exoskeleton that integrates trunk stabilization with active lower-limb support. The design includes a hip–waist rapid adjustment mechanism, a bioinspired gear-rolling knee joint, modular thigh–shank structures, a trunk support module, and a body-weight support device. To enable transparent and coordinated assistance under pathological gait conditions, a continuous gait progress-based multi-joint control framework is developed. Joint motion is described as continuous gait progress over the full gait cycle (0–100%), and joint-specific progress estimates are fused into a unified system-level reference using observability-weighted circular statistics. Inter-joint coordination is achieved through phase-consistency-based temporal modulation implemented, enabling smooth synchronization while preserving joint-level autonomy and motion continuity. Technical evaluation—comprising kinematic misalignment analysis, simulation validation, and gait trials—demonstrated a 66.8% reduction in hip misalignment and an 87.4% reduction in knee misalignment. Gait parameters under exoskeleton-assisted walking closely matched baseline walking, confirming natural kinematic preservation without interference. These results indicate that the proposed trunk–limb exoskeleton improves human–robot synergy, enhances postural stability, and provides a promising solution for pediatric gait rehabilitation in CP.

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Cite This Study

Li et al. (2026) studied this question.

synapsesocial.com/papers/698434dff1d9ada3c1fb377chttps://doi.org/10.3390/biomimetics11020101
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