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Training the bladder how to void: A noninvasive spinal neuromodulation case study.

, , , and . NER, page 1010-1013. IEEE, (2021)

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Tetraplegia to Overground Stepping Using Non-Invasive Spinal Neuromodulation., , and . NER, page 89-92. IEEE, (2019)Training the bladder how to void: A noninvasive spinal neuromodulation case study., , , and . NER, page 1010-1013. IEEE, (2021)Cell Counting and Segmentation of Immunohistochemical Images in the Spinal Cord: Comparing Deep Learning and Traditional Approaches., , , , , , and . EMBC, page 842-845. IEEE, (2018)Challenges and Opportunities for Robot-Mediated Neurorehabilitation., , and . Proc. IEEE, 94 (9): 1717-1726 (2006)22.2 A 176-channel 0.5cm3 0.7g wireless implant for motor function recovery after spinal cord injury., , , , , , , , and . ISSCC, page 382-383. IEEE, (2016)Application of a Rat Hindlimb Model: A Prediction of Force Spaces Reachable Through Stimulation of Nerve Fascicles., , , , and . IEEE Trans. Biomed. Eng., 58 (12): 3328-3338 (2011)Comparison of virtual and physical treadmill environments for training stepping after spinal cord injury., , , , , , , and . Robotica, 21 (1): 25-32 (2003)Neurobiology of Exercise, , , , , , , , , and 9 other author(s). Obesity, 14 (3): 345-356 (March 2006)A 430-MHz Wirelessly Powered Implantable Pulse Generator With Intensity/Rate Control and Sub-1 μA Quiescent Current Consumption., , , , and . IEEE Trans. Biomed. Circuits Syst., 13 (1): 180-190 (2019)Iron 'ElectriRx' man: Overground stepping in an exoskeleton combined with noninvasive spinal cord stimulation after paralysis., , , , , , , , and . EMBC, page 1124-1127. IEEE, (2015)