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Wireless swimming microrobots: Design and development of a 2 DoF magnetic-based system.

, , , , , , and . ICRA, page 3455-3460. IEEE, (2012)

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Magnetically-Controlled Artificial Urinary Sphincters for Severe Urinary Incontinence., , , , and . BioRob, page 1242-1247. IEEE, (2018)Navigation of Magnetic Microrobots With Different User Interaction Levels., , , , , , and . IEEE Trans Autom. Sci. Eng., 11 (3): 818-827 (2014)Magnetically-controlled artificial urinary sphincters for severe urinary incontinence., , , , and . CBS, page 7-11. IEEE, (2017)A discrete-time localization method for capsule endoscopy based on on-board magnetic sensing, , , , , , , and . Measurement Science and Technology, (2012)Wireless swimming microrobots: Design and development of a 2 DoF magnetic-based system., , , , , , and . ICRA, page 3455-3460. IEEE, (2012)Experimental assessment of a novel robotically-driven endoscopic capsule compared to traditional colonoscopy, , , , , , , , , and . Digestive and Liver Disease, 45 (8): 657--662 (2013)A comparative evaluation of control interfaces for a robotic-aided endoscopic capsule platform, , , , , , , and . IEEE Transactions on Robotics, 28 (2): 534--538 (2012)A Bionic Sphincter for Stress Urinary Incontinence: Design and Preliminary Experiments., , , , , , , and . IHSI, volume 722 of Advances in Intelligent Systems and Computing, page 203-208. Springer, (2018)