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Development of shared autonomy and virtual guidance generation system for human interactive teleoperation.

, , and . URAI, page 457-461. IEEE, (2017)

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A Robust Controller Design Method for a Flexible Manipulator with a Time Varying Payload and Parameter Uncertainties., , and . ICRA, page 413-418. IEEE Robotics and Automation Society, (1999)A Feasibility Study of Rate-Mode Mobile Robot Bilateral Teleoperation with Time Domain Passivity Approach., , and . IAS (2), volume 194 of Advances in Intelligent Systems and Computing, page 207-215. Springer, (2012)Development of shared autonomy and virtual guidance generation system for human interactive teleoperation., , and . URAI, page 457-461. IEEE, (2017)Network representation and passivity of delayed teleoperation systems., , , and . IROS, page 177-183. IEEE, (2011)Passivity-based stability in explicit force control of robots., , , , and . ICRA, page 386-393. IEEE, (2017)Development of the human interactive autonomy for the shared teleoperation of mobile robots., , and . IROS, page 1524-1529. IEEE, (2016)Position drift compensation in time domain passivity based teleoperation., , and . IROS, page 4250-4256. IEEE, (2010)Stable Bilateral Control of Teleoperators Under Time-varying Communication Delay: Time Domain Passivity Approach., and . ICRA, page 3508-3513. IEEE, (2007)Time domain passivity control with reference energy following., , , and . IEEE Trans. Contr. Sys. Techn., 13 (5): 737-742 (2005)Sampled and continuous time passivity and stability of virtual environments., , and . ICRA, page 822-827. IEEE, (2003)