An Adaptive and Flexible Brain Energized Full Body Exoskeleton With IoT Edge for Assisting the Paralyzed Patients
暂无分享,去创建一个
B. Manoj Kumar | P. G. Shynu | Sunil Jacob | Varun G. Menon | Venki Balasubramanian | Vasaki Ponnusamy | N. Z. Jhanjhi | Mukil Alagirisamy | Shynu Gopalan Padinjappurathu | V. Balasubramanian | N. Jhanjhi | V. Ponnusamy | Sunil Jacob | P. Shynu | Mukil Alagirisamy | B. M. Kumar
[1] Antonio Frisoli,et al. Design Requirements of Generic Hand Exoskeletons and Survey of Hand Exoskeletons for Rehabilitation, Assistive, or Haptic Use , 2019, IEEE Transactions on Haptics.
[2] Rajesh P. N. Rao,et al. BrainNet: A Multi-Person Brain-to-Brain Interface for Direct Collaboration Between Brains , 2018, ArXiv.
[3] J.C. Perry,et al. Upper-Limb Powered Exoskeleton Design , 2007, IEEE/ASME Transactions on Mechatronics.
[4] Rory Cooper,et al. Stakeholder perspectives on research and development priorities for mobility assistive-technology: a literature review , 2019, Disability and rehabilitation. Assistive technology.
[5] Ayush Agrawal,et al. First Steps Towards Translating HZD Control of Bipedal Robots to Decentralized Control of Exoskeletons , 2017, IEEE Access.
[6] Giuseppe Menga,et al. Lower Limb Exoskeleton for Rehabilitation with Improved Postural Equilibrium , 2018, Robotics.
[7] Laehyun Kim,et al. Non-invasive transmission of sensorimotor information in humans using an EEG/focused ultrasound brain-to-brain interface , 2017, PloS one.
[8] Homayoon Kazerooni,et al. The Berkeley Lower Extremity Exoskeleton , 2006, FSR.
[9] Rong Song,et al. Movement Performance of Human–Robot Cooperation Control Based on EMG-Driven Hill-Type and Proportional Models for an Ankle Power-Assist Exoskeleton Robot , 2017, IEEE Transactions on Neural Systems and Rehabilitation Engineering.
[10] Linhong Ji,et al. The Development and Preliminary Test of a Powered Alternately Walking Exoskeleton With the Wheeled Foot for Paraplegic Patients , 2018, IEEE Transactions on Neural Systems and Rehabilitation Engineering.
[11] Ashish Singla,et al. Toward Human-Powered Lower Limb Exoskeletons: A Review , 2019 .
[12] Xinyu Wu,et al. Design and Voluntary Motion Intention Estimation of a Novel Wearable Full-Body Flexible Exoskeleton Robot , 2017, Mob. Inf. Syst..
[13] Aaron M. Dollar,et al. Biomechanical considerations in the design of lower limb exoskeletons , 2011, 2011 IEEE International Conference on Rehabilitation Robotics.
[14] Stefano Rossi,et al. WAKE-Up Exoskeleton to Assist Children With Cerebral Palsy: Design and Preliminary Evaluation in Level Walking , 2017, IEEE Transactions on Neural Systems and Rehabilitation Engineering.
[15] Stefano Federici,et al. The effectiveness of powered, active lower limb exoskeletons in neurorehabilitation: A systematic review. , 2015, NeuroRehabilitation.
[16] David J. Braun,et al. Enhancing Mobility With Quasi-Passive Variable Stiffness Exoskeletons , 2019, IEEE Transactions on Neural Systems and Rehabilitation Engineering.
[17] Saurin Sheth,et al. Exoskeleton: The Friend of Mankind in context of Rehabilitation and Enhancement , 2016 .
[18] Youngbo Shim,et al. A Wearable Hip Assist Robot Can Improve Gait Function and Cardiopulmonary Metabolic Efficiency in Elderly Adults , 2017, IEEE Transactions on Neural Systems and Rehabilitation Engineering.
[19] Alaa Omran Almagrabi,et al. SDN-Powered Humanoid With Edge Computing for Assisting Paralyzed Patients , 2020, IEEE Internet of Things Journal.
[20] Mohammad Reza Khosravi,et al. Brain-Controlled Adaptive Lower Limb Exoskeleton for Rehabilitation of Post-Stroke Paralyzed , 2019, IEEE Access.
[21] Hugh Herr,et al. Exoskeletons and orthoses: classification, design challenges and future directions , 2009, Journal of NeuroEngineering and Rehabilitation.
[22] Leonardo Mostarda,et al. Artificial Muscle Intelligence System With Deep Learning for Post-Stroke Assistance and Rehabilitation , 2019, IEEE Access.
[23] Minh Tran,et al. Design and Experimental Verification of Hip Exoskeleton With Balance Capacities for Walking Assistance , 2018, IEEE/ASME Transactions on Mechatronics.
[24] Elliott J. Rouse,et al. Design and Validation of a Torque-Controllable Knee Exoskeleton for Sit-to-Stand Assistance , 2017, IEEE/ASME Transactions on Mechatronics.