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Visual Servoing Techniques for Continuous Navigation of a Mobile Robot., , , , and . ICINCO (2), page 343-348. INSTICC Press, (2004)Continuous visual servoing despite the changes of visibility in image features., , , and . IEEE Trans. Robotics, 21 (6): 1214-1220 (2005)Synchronization of Slow Cortical Rhythms During Motor Imagery-Based Brain-Machine Interface Control., , , , , , , and . Int. J. Neural Syst., 29 (5): 1850045:1-1850045:14 (2019)Pneumatic robotic systems for upper limb rehabilitation., , , , and . Med. Biol. Engineering and Computing, 49 (10): 1145-1156 (2011)Multimodal Interfaces to Improve Therapeutic Outcomes in Robot-Assisted Rehabilitation., , , , , and . IEEE Trans. Systems, Man, and Cybernetics, Part C, 42 (6): 1152-1158 (2012)Visual Control of Robots with Delayed Images., , , and . Advanced Robotics, 23 (6): 725-745 (2009)Study of the Navigation Parameters in Appearance-Based Navigation of a Mobile Robot., , , , and . ICIAP, volume 3617 of Lecture Notes in Computer Science, page 1109-1116. Springer, (2005)Patient Evaluation of an Upper-Limb Rehabilitation Robotic Device for Home Use., , , , , , , , , and 1 other author(s). BioRob, page 450-455. IEEE, (2018)Design and Development of a Pneumatic Robot for Neurorehabilitation Therapies., , , , , , and . ROBOT (2), volume 418 of Advances in Intelligent Systems and Computing, page 315-326. Springer, (2015)Comparative of haptic interfaces for robot-assisted surgery., , , , , and . ICINCO, page 375-378. INSTICC Press, (2005)