Abstract
Robot-Assisted Gait Training (RAGT) has emerged as a promising approach to improve motor recovery for stroke survivors. Among RAGT devices, exoskeletons offer precise joint actuation, but they are costly, mechanically complex and present risks related to joint misalignment. End-effector systems present a more affordable and simpler alternative, but face limitations in workspace and adaptability for assist-as-needed therapy. Cable-Driven End-Effector Gait Rehabilitation Robots (CDEGRs) combine the strengths of both approaches, offering low inertia, flexible configurations, and scalable designs. This review systematically examines the current landscape of CDEGRs, encompassing their kinematic classifications, control strategies, and platform configurations. Unlike previous reviews that broadly addressed exoskeletons or upper-limb rehabilitation devices, this work provides a focused and detailed analysis of lower-limb end-effector systems. In doing so, it identifies persistent gaps in design and control frameworks and highlights future research directions toward more efficient and clinically validated CDEGR architectures.
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Sanjuan De Caro, J. D., Castillo-Blanco, J. D., Charris, D., Romero Martínez, D. J., Rahman, M. H., & Nohra, C. (2025, November 1). Cable-Driven End-Effector Robots for Gait Rehabilitation: A Review and Future Research Directions. Robotics. Multidisciplinary Digital Publishing Institute (MDPI). https://doi.org/10.3390/robotics14110169
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