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Are Patient-Specific Joint and Inertial Parameters Necessary for Accurate Inverse Dynamics Analyses of Gait?

, , , and . IEEE Trans. Biomed. Eng., 54 (5): 782-793 (2007)

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Design of patient-specific gait modifications for knee osteoarthritis rehabilitation., , , , and . IEEE Trans. Biomed. Eng., 54 (9): 1687-1695 (2007)Editorial: Advances in Musculoskeletal Modeling and Their Application to Neurorehabilitation., , , and . Frontiers Neurorobotics, (2020)Are Patient-Specific Joint and Inertial Parameters Necessary for Accurate Inverse Dynamics Analyses of Gait?, , , and . IEEE Trans. Biomed. Eng., 54 (5): 782-793 (2007)Erratum to "Design of patient-specific gait modifications for knee osteoarthritis rehabilitation"., , , , and . IEEE Trans. Biomed. Eng., 54 (10): 1905 (2007)Computational Assessment of Combinations of Gait Modifications for Knee Osteoarthritis Rehabilitation.. IEEE Trans. Biomed. Eng., 55 (8): 2104-2106 (2008)Do Muscle Synergies Improve Optimization Prediction of Muscle Activations During Gait?, , , and . Frontiers Comput. Neurosci., (2020)Methodological Choices in Muscle Synergy Analysis Impact Differentiation of Physiological Characteristics Following Stroke., , , , and . Frontiers Comput. Neurosci., (2017)Evaluation of Synergy Extrapolation for Predicting Unmeasured Muscle Excitations from Measured Muscle Synergies., , , and . Frontiers Comput. Neurosci., (2020)An Open-Source Toolbox for Surrogate Modeling of Joint Contact Mechanics., and . IEEE Trans. Biomed. Eng., 63 (2): 269-277 (2016)Computational Design of FastFES Treatment to Improve Propulsive Force Symmetry During Post-stroke Gait: A Feasibility Study., , , , , and . Frontiers Neurorobotics, (2019)