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Cartesian control issues for minimally invasive robot surgery

Conference Paper Accepted Paper Artificial Intelligence ยท Robotics

Abstract

Telepresence in minimally invasive surgery (MIS) is a promising application for robotics because the robot enhances the manipulation and sensation capabilities of the surgeon. Many of these surgical robots are equipped with passive joints that guarantee that no forces are exerted to the entry point. Due to these passive joints, which are dependent on the entry point's position, new algorithms for cartesian control have to be developed. After introducing the kinematics of the robot, used in the DLR minimally invasive robot surgery scenario, we show how the entry point (trocar) can be estimated, followed by the calculation of the inverse kinematics. To allow cartesian velocity control of the robot system we build an observer that is used to close the velocity control loop. Experiments show the performance of the chosen algorithms.

Authors

Keywords

  • Minimally invasive surgery
  • Kinematics
  • Robot sensing systems
  • Velocity control
  • Surges
  • Medical robotics
  • Application software
  • Surgical instruments
  • Computational geometry
  • Mechatronics
  • Minimally Invasive
  • Entry Point
  • Inverse Kinematics
  • Telepresence
  • Passive Joint
  • Robot Kinematics
  • Degrees Of Freedom
  • Applications In Fields
  • Jacobian Matrix
  • Force Feedback
  • Pivot Point
  • Joint Velocity
  • Active Joint

Context

Venue
IEEE/RSJ International Conference on Intelligent Robots and Systems
Archive span
1988-2025
Indexed papers
26578
Paper id
534611089645669657
v2026.09.13