- Chen B, Zi B, Wang Z, Qin L, Liao W-H. Knee exoskeletons for gait rehabilitation and human performance augmentation: A state-of-the-art. Mechanism and Machine Theory. 2019;134:499-511.
- Yu H, Cruz MS, Chen G, Huang S, Zhu C, Chew E, et al. Mechanical design of a portable knee-ankle-foot robot. 2013 IEEE International Conference on Robotics and Automation; 2013: IEEE.
- Baldovino RG, Jamisola RS. A survey in the different designs and control systems of powered exoskeleton for lower extremities. 2017; 1 (4): 103-115.
- Nacy SM, Ghaeb NH, Abdallh M. A review of lower limb exoskeletons. Innovative Syst Des Eng. 2016;7(1); 95, 102-116.
- McGibbon CA, Brandon SC, Brookshaw M, Sexton A. Effects of an over-ground exoskeleton on external knee moments during stance phase of gait in healthy adults. The Knee. 2017;24(5):977-93.
- Cherry MS, Kota S, Young A, Ferris DP. Running with an elastic lower limb exoskeleton. Journal of applied biomechanics. 2016;32(3):269-77.
- Van Dijk W, Van der Kooij H, Hekman E. A passive exoskeleton with artificial tendons: Design and experimental evaluation. 2011 IEEE International Conference on Rehabilitation Robotics; 2011: IEEE.
- van Dijk W, Van der Kooij H. XPED2: A passive exoskeleton with artificial tendons. IEEE robotics & automation magazine. 2014;21(4):56-61.
- Van den Bogert AJ. Exotendons for assistance of human locomotion. Biomedical engineering online. 2003;2(1):1-8.
- Lee K-M, Wang D, editors. Design analysis of a passive weight-support lower-extremity-exoskeleton with compliant knee-joint. 2015 IEEE International Conference on Robotics and Automation (ICRA); 2015: IEEE.
- Lovrenovic Z, Doumit M. Development and testing of a passive walking assist exoskeleton. Biocybernetics and Biomedical Engineering. 2019;39(4):992-1004.
- Xie L, Li X, Cai S, Huang G, Huang L. Knee-braced energy harvester: Reclaim energy and assist walking. Mechanical Systems and Signal Processing. 2019;127:172-89.
- Budarick AR, MacKeil BE, Fitzgerald S, Cowper-Smith CD. Design evaluation of a novel Multicompartment unloader knee brace. Journal of Biomechanical Engineering. 2020;142(1): 014502.
- Bishop E, Kuntze G, Ronsky J. Effect of a tri compartment unloader knee brace on knee moments and quadriceps activity during a chair rise and lower and stair descent in individuals with knee osteoarthritis. Osteoarthritis and Cartilage. 2020;28:S243-S4.
- https://springloadedtechnology.com/.
- Kapadia BH, Cherian JJ, Starr R, Chughtai M, Mont MA, Harwin SF, et al. Gait using pneumatic brace for end-stage knee osteoarthritis. The journal of knee surgery. 2016;29(03):218-23.
- Actiscience. Power Knee Stabilizer Pads 2020 [Available from: www.flexicomfort.co.uk.
- De Looze MP, Bosch T, Krause F, Stadler KS, O’Sullivan LW. Exoskeletons for industrial application and their potential effects on physical work load. Ergonomics. 2016;59(5):671-81.
- noonee. chairless: https://www.noonee.com/en/; 2019 [Available from: https://www.noonee.com/en/.
- https://exoskeletonreport.com/product/fortis/.
- Wilmart R, Garone E, Innocenti BJM. The use of robotics devices in knee rehabilitation; a critical review. Muscles, Ligaments & Tendons Journal. 2019;9(1): 21-48.
- Krut S, Benoit M, Dombre E, Pierrot F, editors. Moonwalker, a lower limb exoskeleton able to sustain bodyweight using a passive force balancer. 2010 IEEE International Conference on Robotics and Automation; 2010: IEEE.
- Fedorov D, Birglen L. Design of a Compliant Mechanical Device for Upper Leg Rehabilitation. IEEE Robotics and Automation Letters. 2019;4(2):870-7.
- Agrawal SK, Banala SK, Fattah A, Scholz JP, Krishnamoorthy V, Hsu W-L. A Gravity Balancing Passive Exoskeleton for the Human Leg. Robotics: Science and Systems; 2006.
- Geonea ID, Tarnita D. Design and evaluation of a new exoskeleton for gait rehabilitation. Mechanical Sciences. 2017;8(2):307.
- Auberger R, Breuer-Ruesch C, Fuchs F, Wismer N, Riener R, editors. Smart passive exoskeleton for everyday use with lower limb paralysis: Design and first results of knee joint kinetics. 2018 7th IEEE International Conference on Biomedical Robotics and Biomechatronics (Biorob); 2018: IEEE.
- Alamdari A, Krovi V. Design and analysis of a cable-driven articulated rehabilitation system for gait training. Journal of Mechanisms and Robotics. 2016;8(5):051018.
- www.alterg.com.
- Tian F, Hefzy MS, Elahinia M. State of the art review of Knee–Ankle–Foot orthoses. Annals of biomedical engineering. 2015;43(2):427-41.
- Winter DA. Biomechanics and motor control of human movement: John Wiley & Sons; 2009.
- Prodromos C. The Anterior Cruciate Ligament: Reconstruction and Basic Science E-Book: Elsevier Health Sciences; 2017.
- MASc TY, Jonathan Kofman PhD P. Engineering design review of stance-control knee-ankle-foot orthoses. Journal of rehabilitation research and development. 2009;46(2):257.
- https://www.donjoyperformance.com.
- Hangalur G, Bakker R, Tomescu S, Chandrashekar N. New Adjustable Unloader Knee Brace and Its Effectiveness. Journal of Medical Devices. 2018;12(1):015001.
- Greenfield JR, Hwang HF, Davies C, McDaid AJ, editors. Soft-stop knee brace for rehabilitation from ligament injuries: Design and pilot trial. 2017 International Conference on Rehabilitation Robotics (ICORR); 2017: IEEE.
- ossur. Formfit® OA Wraparound 2020 [Available from: www.ossur.com/en-ca/bracing-and-supports/knee.
- He C, Pan L, Li Q, editors. Structural Design of Wearable Lower Extremity Exoskeleton Based on the Human Body Engineering. 2015 3rd International Conference on Mechanical Engineering and Intelligent Systems; 2015: Atlantis Press.
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