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May 10, 2026Journal of NeuroEngineering and Rehabilitation2 citationsOpen Access

Post-stroke lower limb rehabilitation: a comparative study between exoskeleton robots and traditional gait training

WXWenzhu XuNLNai Yeen Gavin LaiKWKok-Hoong Wong

Key Points

  • This study aims to compare the effectiveness of robotic-assisted gait training with exoskeletons to traditional gait training for improving rehabilitation outcomes after stroke.
  • Conducted a systematic review of 86 studies published between 2004 and 2024 following PRISMA guidelines.
  • Focus on moderate to severe stroke patients undergoing robotic-assisted gait training, traditional gait training, or combined interventions.
  • Evaluated outcomes like gait symmetry, walking speed, and muscle strength using neuroplasticity biomarkers.
  • Robotic-assisted gait training improved gait symmetry index by 99.8% and walking speed by 20%.
  • Traditional gait training enhanced functional independence and active participation in daily activities.
  • Neuroplasticity analysis indicated robotic-assisted training strengthened spinal-brainstem functions while traditional training better preserved cortical coordination.

Abstract

This study systematically compares the efficacy of robotic-assisted gait training (RAGT) with exoskeletons to traditional gait training (TGT) for lower limb rehabilitation after stroke, focusing on motor recovery, neuroplasticity, and muscle function. A comprehensive systematic review was conducted across PubMed, Scopus, Web of Science, IEEE Xplore and Google Scholar for studies published between 2004 and 2024 following the PRISMA guidelines. A total of 86 studies were selected based on strict inclusion criteria, covering moderate to severe stroke patients undergoing RAGT, TGT, or combined interventions. Outcome metrics included gait symmetry, walking speed, neuroplasticity biomarkers (e.g., BDNF, fMRI), and muscle strength indicators. This systematic review was pre-registered with PROSPERO (ID: CRD420261333541). RAGT demonstrated superior improvements in gait symmetry index (+ 99.8% trajectory accuracy), walking speed (+ 20%), and muscle strength via high-intensity, repeatable training. TGT excelled in promoting active participation, cortical engagement, and functional independence, particularly in activities of daily living. Neuroplasticity analysis revealed RAGT enhanced spinal-brainstem rhythmic-ity, while TGT reinforced cortical-cerebellar motor planning. Muscle recovery was accelerated by RAGT through anti-gravitational support, though TGT better preserved natural movement patterns and coordination. RAGT and TGT exhibit complementary strengths in stroke rehabilitation. Integrating RAGT’s high-intensity, objective training with TGT’s adaptive, patient-centered approach represents a promising direction for personalized, AI-enhanced neurorehabilitation strategies.

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Cite This Study

Xu et al. (2026) studied this question.

synapsesocial.com/papers/6a002162c8f74e3340f9c491https://doi.org/10.1186/s12984-026-02006-6
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Effects of high-intensity interval robot-assisted gait training on cardiopulmonary function and walking ability in chronic stroke survivors: A multicenter single-blind randomized controlled trial2024 · 14 citations
  2. 2Potential adverse effects of face mask use on cardiopulmonary function and thermoregulation in robotic stroke rehabilitation during the COVID-19 pandemic2023 · 1 citations
  3. 3The global and regional burden of stroke2013 · 90 citations
  4. 4Virtual reality to augment robot-assisted gait training in non-ambulatory patients with a subacute stroke: a pilot randomized controlled trial2018 · 116 citations
  5. 5Healthy lifestyles and wellbeing reduce neuroinflammation and prevent neurodegenerative and psychiatric disorders2023 · 90 citations