[1] 赵新刚, 谈晓伟, 张弼. 柔性下肢外骨骼机器人研究进展及关键技术分析[J]. 机器人, 2020, 42(03): 365-384.
[2] SAWICKI G S, BECK O N, KANG I, et al. The exoskeleton expansion: improving walking and running economy[J]. Journal of NeuroEngineering and Rehabilitation, 2020, 17(1):25-39.
[3] SANCHEZ-VILLAMANAN M D C, GONZALEZ-VARGAS J, TORRICELLI D, et al. Compliant lower limb exoskeletons: a comprehensive review on mechanical design principles[J]. Journal of NeuroEngineering and Rehabilitation, 2019, 16(1):55-69.
[4] LI Z, YUAN Y, LUO L, et al. Hybrid brain/muscle signals powered wearable walking exoskeleton enhancing motor ability in climbing stairs activity[J]. IEEE Transactions on Medical Robotics and Bionics, 2019, 1(4):218-227.
[5] BRYAN G M, FRANKS P W, KLEIN S C, et al. A hip–knee–ankle exoskeleton emulator for studying gait assistance[J]. The International Journal of Robotics Research, 2020, 40(4-5):722-746.
[6] VERONNEAU C, LUCKING BIGUE J-P, LUSSIER-DESBIENS A, et al. A high-bandwidth back-drivable hydrostatic power distribution system for exoskeletons based on magnetorheological clutches[J]. IEEE Robotics and Automation Letters, 2018, 3(3):2592-2599.
[7] ASBECK A T, DE ROSSI S M M, HOLT K G, et al. A biologically inspired soft exosuit for walking assistance[J]. The International Journal of Robotics Research, 2015, 34(6):744-762.
[8] SAMPER-ESCUDERO J L, GIMENEZ-FERNANDEZ A, SANCHEZ-URAN M A, et al. A cable-driven exosuit for upper limb flexion based on fibres compliance[J]. IEEE Access, 2020, 8:153297-153310.
[9] ASBECK A T, SCHMIDT K, GALIANA I, et al. Multi-joint soft exosuit for gait assistance[C]//IEEE International Conference on Robotics and Automation (ICRA). Seattle: IEEE, 2015:6197-6204.
[10] X. JIN Y C, A. PRADO AND S. K. AGRAWAL. Effects of exoskeleton weight and inertia on human walking[C]//International Conference on Robotics and Automation (ICRA). Singapore:IEEE, 2017:1772-1777.
[11] GALLE S, MALCOLM P, COLLINS S H, et al. Reducing the metabolic cost of walking with an ankle exoskeleton: interaction between actuation timing and power[J]. Journal of NeuroEngineering and Rehabilitation, 2017, 14(1):35-49.
[12] OREKHOV G, FANG Y, LUQUE J, et al. Ankle exoskeleton assistance can improve over-ground walking economy in individuals with cerebral palsy[J]. IEEE Transactions on Neural Systems and Rehabilitation Engineering, 2020, 28(2):461-467.
[13] DING Y, GALIANA I, ASBECK A T, et al. Biomechanical and physiological evaluation of multi-joint assistance with soft exosuits[J]. IEEE Transactions on Neural Systems and Rehabilitation Engineering, 2017, 25(2):119-130.
[14] MALCOLM P, ROSSI D M, SIVIY C, et al. Continuous sweep versus discrete step protocols for studying effects of wearable robot assistance magnitude[J]. Journal of NeuroEngineering and Rehabilitation, 2017, 14(1):72-85.
[15] NUCKOLS R W, LEE S, SWAMINATHAN K, et al. Individualization of exosuit assistance based on measured muscle dynamics during versatile walking[J]. Science Robotics, 2021, 6(60):1362-1373.
[16] AWAD L N, ESQUENAZI A, FRANCISCO G E, et al. The rewalk restore soft robotic exosuit: a multi-site clinical trial of the safety, reliability, and feasibility of exosuit-augmented post-stroke gait rehabilitation[J]. Journal of NeuroEngineering and Rehabilitation, 2020, 17(1):80-94.
[17] SIVIY C, BAE J, BAKER L, et al. Offline assistance optimization of a soft exosuit for augmenting ankle power of stroke survivors during walking[J]. IEEE Robotics and Automation Letters, 2020, 5(2):828-835.
[18] KHAZOOM C, VERONNEAU C, BIGUE J-P L, et al. Design and control of a multifunctional ankle exoskeleton powered by magnetorheological actuators to assist walking, jumping, and landing[J]. IEEE Robotics and Automation Letters, 2019, 4(3):3083-3090.
[19] KIM J, LEE G, HEIMGARTNER R, et al. Reducing the metabolic rate of walking and running with a versatile, portable exosuit[J]. Science, 2019, 365(6454):668-672.
[20] DING Y, KIM M, KUINDERSMA S, et al. Human-in-the-loop optimization of hip assistance with a soft exosuit during walking[J]. Science Robotics, 2018, 3(15):5438-5447.
[21] QUINLIVAN B T, LEE S, MALCOLM P, et al. Assistance magnitude versus metabolic cost reductions for a tethered multiarticular soft exosuit[J]. Science Robotics, 2017, 2(2):4416-4426.
[22] LEE S, KARAVAS N, QUINLIVAN B, et al. Autonomous multi-joint soft exosuit for assistance with walking overground[C]//IEEE International Conference on Robotics and Automation (ICRA). Brisbane:IEEE, 2018:2812-2819.
[23] WITTE K A, FIERS P, SHEETS-SINGER A L, et al. Improving the energy economy of human running with powered and unpowered ankle exoskeleton assistance[J]. Science Robotics, 2020, 5(40):9108-9116.
[24] WITTE K A, ZHANG J, JACKSON R W, et al. Design of two lightweight, high-bandwidth torque-controlled ankle exoskeletons[C]//International Conference on Robotics and Automation (ICRA). Seattle:IEEE, 2015:1223-1228.
[25] POGGENSEE K L, COLLINS S H. How adaptation, training, and customization contribute to benefits from exoskeleton assistance[J]. Science Robotics, 2021, 6(58):1078-1091.
[26] LEE H D, MOON J I, KANG T H. Design of a series elastic tendon actuator based on gait analysis for a walking assistance exosuit[J]. International Journal of Control, Automation and Systems, 2019, 17(11):2940-2947.
[27] ORTIZ J, POLIERO T, CAIROLI G, et al. Energy efficiency analysis and design optimization of an actuation system in a soft modular lower limb exoskeleton[J]. IEEE Robotics and Automation Letters, 2018, 3(1):484-491.
[28] SCHMIDT K, DUARTE J E, GRIMMER M, et al. The Myosuit: bi-articular anti-gravity exosuit that reduces hip extensor activity in sitting transfers[J]. Frontiers in Neurorobotics, 2017, 11(57):145-161.
[29] GRIMMER M, RIENER R, WALSH C J, et al. Mobility related physical and functional losses due to aging and disease - a motivation for lower limb exoskeletons[J]. Journal of NeuroEngineering and Rehabilitation, 2019, 16(1):1-21.
[30] KWON J, PARK J, KU S, et al. A soft wearable robotic ankle-foot-orthosis for post-stroke patients[J]. IEEE Robotics and Automation Letters, 2019, 4(3):2547-2552.
[31] LERNER Z F, HARVEY T A, LAWSON J L. A battery-powered ankle exoskeleton improves gait mechanics in a feasibility study of individuals with cerebral palsy[J]. Annals of Biomedical Engineering, 2019, 47(6):1345-1356.
[32] BARTENBACH V, SCHMIDT K, NAEF M, et al. Concept of a soft exosuit for the support of leg function in rehabilitation[C]//International Conference on Rehabilitation Robotics (ICORR). Singapore:IEEE, 2015:125-130.
[33] FANG K, WU X, CHEN C, et al. Auto cable pretension method for soft exosuit based on gait trajectory prediction network[C]//IEEE 4th International Conference on Advanced Robotics and Mechatronics (ICARM). Toyonaka:IEEE, 2019:463-468.
[34] ZHANG Q, SHEN X, WANG X, et al. Development of a small clamper for tendon-sheath artificial muscle[C]//2018 25th International Conference on Mechatronics and Machine Vision in Practice (M2VIP). Stuttgart:IEEE, 2018:1-6.
[35] TAN X, ZHANG B, LIU G, et al. Cadence-insensitive soft exoskeleton design with adaptive gait state detection and iterative force control[J]. IEEE Transactions on Automation Science and Engineering, 2021, 3(1):1-14.
[36] ROSE C G, O'MALLEY M K. Hybrid rigid-soft hand exoskeleton to assist functional dexterity[J]. IEEE Robotics and Automation Letters, 2019, 4(1):73-80.
[37] XILOYANNIS M, ANNESE E, CANESI M, et al. Design and validation of a modular one-to-many actuator for a soft wearable exosuit[J]. Frontiers in Neurorobotics, 2019, 13(39):33-47.
[38] XILOYANNIS M, CHIARADIA D, FRISOLI A, et al. Physiological and kinematic effects of a soft exosuit on arm movements[J]. Journal of NeuroEngineering and Rehabilitation, 2019, 16(1):29-44.
[39] ZHENG E, MANCA S, YAN T, et al. Gait phase estimation based on noncontact capacitive sensing and adaptive oscillators[J]. IEEE Transactions on Biomedical Engineering, 2017, 64(10):2419-2430.
[40] WANG W, CHEN J, JI Y, et al. Evaluation of lower leg muscle activities during human walking assisted by an ankle exoskeleton[J]. IEEE Transactions on Industrial Informatics, 2020, 16(11):7168-7176.
[41] KIM S H, HUIZENGA D E, HANDZIC I, et al. Relearning functional and symmetric walking after stroke using a wearable device: a feasibility study[J]. Journal of NeuroEngineering and Rehabilitation, 2019, 16(1):106-120.
[42] DING Y, GALIANA I, SIVIY C, et al. IMU-based iterative control for hip extension assistance with a soft exosuit[C]//IEEE International Conference on Robotics and Automation (ICRA). Stockholm:IEEE, 2016:3501-3508.
[43] LENCIONI T, CARPINELLA I, RABUFFETTI M, et al. Human kinematic, kinetic and EMG data during different walking and stair ascending and descending tasks[J]. Scientific Data, 2019, 6(1):309-319.
[44] HAN Y, WANG X. The biomechanical study of lower limb during human walking[J]. Science China Technological Sciences, 2011, 54(4):983-991.
[45] KARBASI H, HUISSOON J P, KHAJEPOUR A. Uni-drive modular robots: theory, design, and experiments[J]. Mechanism and Machine Theory, 2004, 39(2):183-200.
[46] HALDANE D W, PLECNIK M M, YIM J K, et al. Robotic vertical jumping agility via series-elastic power modulation[J]. Science Robotics, 2016, 1(1):2048-2057.
[47] ILTON M, BHAMLA M S, MA X, et al. The principles of cascading power limits in small, fast biological and engineered systems[J]. Science, 2018, 360(6387):1082-1094.
[48] SAERENS E, FURNéMONT R, VERSTRATEN T, et al. Scaling laws of compliant elements for high energy storage capacity in robotics[J]. Mechanism and Machine Theory, 2019, 139(1):482-505.
[49] HWANG S, KIM Y, KIM Y. Lower extremity joint kinetics and lumbar curvature during squat and stoop lifting[J]. BMC Musculoskeletal Disorders, 2009, 10(1):15-25.
[50] COLLINS S H, WIGGIN M B, SAWICKI G S. Reducing the energy cost of human walking using an unpowered exoskeleton[J]. Nature, 2015, 522(7555):212-215.
[51] VILLARREAL D J, POONAWALA H A, GREGG R D. A robust parameterization of human gait patterns across phase-shifting perturbations[J]. IEEE Transactions on Neural Systems and Rehabilitation Engineering, 2017, 25(3):265-278.
[52] QUINTERO D, VILLARREAL D J, LAMBERT D J, et al. Continuous-phase control of a powered knee-ankle prosthesis: amputee experiments across speeds and inclines[J]. IEEE Transactions on Robotics, 2018, 34(3):686-701.
[53] PANIZZOLO F A, GALIANA I, ASBECK A T, et al. A biologically-inspired multi-joint soft exosuit that can reduce the energy cost of loaded walking[J]. Journal of NeuroEngineering and Rehabilitation, 2016, 13(1):43-57.
[54] SHEPERTYCKY M, BURTON S, DICKSON A, et al. Removing energy with an exoskeleton reduces the metabolic cost of walking[J]. Science, 2021, 372(6545):957-960.
[55] DING Y, PANIZZOLO F A, SIVIY C, et al. Effect of timing of hip extension assistance during loaded walking with a soft exosuit[J]. Journal of NeuroEngineering and Rehabilitation, 2016, 13(1):87-97.
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