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Evaluation of a Force-Sensing Handheld Robot for Assisted Retinal Vein Cannulation.

, , and . EMBC, page 1-5. IEEE, (2018)

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A comparative study for robot assisted vitreoretinal surgery: Micron vs. the Steady-Hand Robot., , , , and . ICRA, page 4832-4837. IEEE, (2013)Force sensing micro-forceps for robot assisted retinal surgery., , , , , , and . EMBC, page 1401-1404. IEEE, (2012)FBG-based transverse and axial force-sensing micro-forceps for retinal microsurgery., and . IEEE SENSORS, page 1-3. IEEE, (2016)Toward sclera-force-based robotic assistance for safe micromanipulation in vitreoretinal surgery., , , , and . IEEE SENSORS, page 1-3. IEEE, (2017)Towards Robot-Assisted Retinal Vein Cannulation: A Motorized Force-Sensing Microneedle Integrated with a Handheld Micromanipulator., , , , and . Sensors, 17 (10): 2195 (2017)Force control with hybrid actuator for virtual needle insertion., and . World Haptics, page 173-177. IEEE Computer Society, (2011)Motorized force-sensing micro-forceps with tremor cancelling and controlled micro-vibrations for easier membrane peeling., , , , and . BioRob, page 244-251. IEEE, (2014)3-DOF force-sensing micro-forceps for robot-assisted membrane peeling: Intrinsic actuation force modeling., , , , , and . BioRob, page 489-494. IEEE, (2016)Safe tissue manipulation in retinal microsurgery via motorized instruments with force sensing., , , and . IEEE SENSORS, page 1-3. IEEE, (2017)Evaluation of virtual fixtures for robot-assisted cochlear implant insertion., , , , , , and . BioRob, page 332-338. IEEE, (2014)