Step-to-Step Ankle Inversion/Eversion Torque Modulation Can Reduce Effort Associated with Balance
暂无分享,去创建一个
[1] E. Edgington. Statistical inference from N--1 experiments. , 1967, The Journal of psychology.
[2] J. Gentile,et al. An analysis-of-variance model for the intrasubject replication design. , 1972, Journal of applied behavior analysis.
[3] D. P. Hartmann,et al. Forcing square pegs into round holes: some comments on "an analysis-of-variance model for the intrasubject replication design". , 1974, Journal of applied behavior analysis.
[4] J. Brockway. Derivation of formulae used to calculate energy expenditure in man. , 1987, Human nutrition. Clinical nutrition.
[5] B. E. Maki,et al. Gait Changes in Older Adults: Predictors of Falls or Indicators of Fear? , 1997, Journal of the American Geriatrics Society.
[6] Arthur D. Kuo,et al. Stabilization of Lateral Motion in Passive Dynamic Walking , 1999, Int. J. Robotics Res..
[7] M. Dermer,et al. Improving Descriptions of Single-Subject Experiments in Research Texts Written for Undergraduates , 1999 .
[8] R. Waters,et al. The energy expenditure of normal and pathologic gait. , 1999, Gait & posture.
[9] M. S. Lourens,et al. Expiratory time constants in mechanically ventilated patients with and without COPD , 2000, Intensive Care Medicine.
[10] Richard M. Smith,et al. Extrinsic Muscle Activity, Foot Motion and Ankle Joint Moments During the Stance Phase of Walking , 2001, Foot & ankle international.
[11] J. Donelan,et al. Mechanical and metabolic requirements for active lateral stabilization in human walking. , 2004, Journal of biomechanics.
[12] Richard M. Kubina,et al. Multiple Baseline Designs: The Use of a Single-Case Experimental Design in Literacy Research. , 2004 .
[13] S. Ogawa,et al. Different effects on circulatory control during volatile induction and maintenance of anesthesia and total intravenous anesthesia: autonomic nervous activity and arterial cardiac baroreflex function evaluated by blood pressure and heart rate variability analysis. , 2006, Journal of clinical anesthesia.
[14] J. Paysant,et al. Influence of terrain on metabolic and temporal gait characteristics of unilateral transtibial amputees. , 2006, Journal of rehabilitation research and development.
[15] A. Hof,et al. Control of lateral balance in walking. Experimental findings in normal subjects and above-knee amputees. , 2007, Gait & posture.
[16] Martijn Wisse,et al. System overview of bipedal robots Flame and TUlip: Tailor-made for Limit Cycle Walking , 2008, 2008 IEEE/RSJ International Conference on Intelligent Robots and Systems.
[17] Nicholas P. Fey,et al. The influence of increasing steady-state walking speed on muscle activity in below-knee amputees. , 2010, Journal of electromyography and kinesiology : official journal of the International Society of Electrophysiological Kinesiology.
[18] S. Collins,et al. Systematic variation of prosthetic foot parameter affects 1 center-of-mass mechanics and metabolic cost during walking 2 3 4 , 2010 .
[19] M. Grabiner,et al. Variation in trunk kinematics influences variation in step width during treadmill walking by older and younger adults. , 2010, Gait & posture.
[20] S. Collins,et al. Systematic Variation of Prosthetic Foot Spring Affects Center-of-Mass Mechanics and Metabolic Cost During Walking , 2011, IEEE Transactions on Neural Systems and Rehabilitation Engineering.
[21] A. Hof,et al. Over rough and smooth: amputee gait on an irregular surface. , 2011, Gait & posture.
[22] A. Kuo,et al. Energetic cost of walking with increased step variability. , 2012, Gait & posture.
[23] P. Veltink,et al. Comparison of muscle activity patterns of transfemoral amputees and control subjects during walking , 2013, Journal of NeuroEngineering and Rehabilitation.
[24] Steven H. Collins,et al. An experimental robotic testbed for accelerated development of ankle prostheses , 2013, 2013 IEEE International Conference on Robotics and Automation.
[25] L. V. D. van der Woude,et al. Effect of balance support on the energy cost of walking after stroke. , 2013, Archives of physical medicine and rehabilitation.
[26] Daniel P. Ferris,et al. Biomechanics and energetics of walking on uneven terrain , 2013, Journal of Experimental Biology.
[27] S. Gard,et al. The effects of walking speed and prosthetic ankle adapters on upper extremity dynamics and stability-related parameters in bilateral transtibial amputee gait. , 2013, Gait & posture.
[28] S. Collins,et al. Two Independent Contributions to Step Variability during Over-Ground Human Walking , 2013, PloS one.
[29] F. Riva,et al. Estimating fall risk with inertial sensors using gait stability measures that do not require step detection. , 2013, Gait & posture.
[30] Jessica C. Selinger,et al. Estimating instantaneous energetic cost during non-steady-state gait. , 2014, Journal of applied physiology.
[31] L. V. D. van der Woude,et al. Can external lateral stabilization reduce the energy cost of walking in persons with a lower limb amputation? , 2014, Gait & posture.
[32] W. Karlen,et al. Estimating Respiratory and Heart Rates from the Correntropy Spectral Density of the Photoplethysmogram , 2014, PloS one.
[33] J. Dingwell,et al. Dynamic stability of individuals with transtibial amputation walking in destabilizing environments. , 2014, Journal of biomechanics.
[34] Chandana Paul,et al. Low-bandwidth reflex-based control for lower power walking: 65 km on a single battery charge , 2014, Int. J. Robotics Res..
[35] Steven H Collins,et al. Once-per-step control of ankle-foot prosthesis push-off work reduces effort associated with balance during walking , 2015, Journal of NeuroEngineering and Rehabilitation.
[36] Jessica C. Selinger,et al. Humans Can Continuously Optimize Energetic Cost during Walking , 2015, Current Biology.
[37] Tianjian Chen,et al. An ankle-foot prosthesis emulator with control of plantarflexion and inversion-eversion torque , 2015, 2015 IEEE International Conference on Robotics and Automation (ICRA).
[38] Joshua M. Caputo. Informing ankle-foot prosthesis design and prescription through systematic experimentation with a tethered robotic prosthesis , 2015 .
[39] Myunghee Kim,et al. Ankle Controller Design For Robotic Ankle-Foot Prostheses to Reduce Balance-Related Effort During Walking Using a Dynamic Walking Approach , 2015 .
[40] T. Wai,et al. Mitochondrial Dynamics and Metabolic Regulation , 2016, Trends in Endocrinology & Metabolism.
[41] J. Dingwell,et al. Use of Perturbation-Based Gait Training in a Virtual Environment to Address Mediolateral Instability in an Individual With Unilateral Transfemoral Amputation , 2016, Physical Therapy.
[42] A. Achiron,et al. The effect of balance training on postural control in people with multiple sclerosis using the CAREN virtual reality system: a pilot randomized controlled trial , 2016, Journal of NeuroEngineering and Rehabilitation.
[43] Joshua M. Caputo,et al. Increasing ankle push-off work with a powered prosthesis does not necessarily reduce metabolic rate for transtibial amputees. , 2016, Journal of biomechanics.
[44] Ben Joseph S. Esguerra,et al. Improving Balance through Virtual Reality and Physical Therapy Integration , 2017 .
[45] Myunghee Kim,et al. Once-Per-Step Control of Ankle Push-Off Work Improves Balance in a Three-Dimensional Simulation of Bipedal Walking , 2017, IEEE Transactions on Robotics.
[46] Dirk De Clercq,et al. Reducing the metabolic cost of walking with an ankle exoskeleton: interaction between actuation timing and power , 2017, Journal of NeuroEngineering and Rehabilitation.