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PUBMED FOR HANDHELDS

Journal Abstract Search


934 related items for PubMed ID: 28330471

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  • 2. The effect of impedance-controlled robotic gait training on walking ability and quality in individuals with chronic incomplete spinal cord injury: an explorative study.
    Fleerkotte BM, Koopman B, Buurke JH, van Asseldonk EH, van der Kooij H, Rietman JS.
    J Neuroeng Rehabil; 2014 Mar 04; 11():26. PubMed ID: 24594284
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  • 5. Effects of end-effector robot-assisted gait training on gait ability, muscle strength, and balance in patients with spinal cord injury.
    Shin JC, Jeon HR, Kim D, Min WK, Lee JS, Cho SI, Oh DS, Yoo J.
    NeuroRehabilitation; 2023 Mar 04; 53(3):335-346. PubMed ID: 37638457
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  • 6. Overground Gait Training With a Wearable Robot in Children With Cerebral Palsy: A Randomized Clinical Trial.
    Choi JY, Kim SK, Hong J, Park H, Yang SS, Park D, Song MK.
    JAMA Netw Open; 2024 Jul 01; 7(7):e2422625. PubMed ID: 39037815
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  • 7. Effects of robot-assisted gait training on cardiopulmonary function and lower extremity strength in individuals with spinal cord injury: A systematic review and meta-analysis.
    Wan C, Huang S, Wang X, Ge P, Wang Z, Zhang Y, Li Y, Su B.
    J Spinal Cord Med; 2024 Jan 01; 47(1):6-14. PubMed ID: 36972206
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  • 8. Robotic-assisted step training (lokomat) not superior to equal intensity of over-ground rehabilitation in patients with multiple sclerosis.
    Vaney C, Gattlen B, Lugon-Moulin V, Meichtry A, Hausammann R, Foinant D, Anchisi-Bellwald AM, Palaci C, Hilfiker R.
    Neurorehabil Neural Repair; 2012 Jan 01; 26(3):212-21. PubMed ID: 22140197
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  • 16. Training with robot-applied resistance in people with motor-incomplete spinal cord injury: Pilot study.
    Lam T, Pauhl K, Ferguson A, Malik RN, BKin, Krassioukov A, Eng JJ.
    J Rehabil Res Dev; 2015 Jan 01; 52(1):113-29. PubMed ID: 26230667
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