A Concurrent Framework for Constrained Inverse Kinematics of Minimally Invasive Surgical Robots

Author:

Colan Jacinto1ORCID,Davila Ana2ORCID,Fozilov Khusniddin1ORCID,Hasegawa Yasuhisa1ORCID

Affiliation:

1. Department of Micro-Nano Mechanical Science and Engineering, Nagoya University, Furo-cho, Chikusa-ku, Nagoya 464-8603, Aichi, Japan

2. Institutes of Innovation for Future Society, Nagoya University, Furo-cho, Chikusa-ku, Nagoya 464-8601, Aichi, Japan

Abstract

Minimally invasive surgery has undergone significant advancements in recent years, transforming various surgical procedures by minimizing patient trauma, postoperative pain, and recovery time. However, the use of robotic systems in minimally invasive surgery introduces significant challenges related to the control of the robot’s motion and the accuracy of its movements. In particular, the inverse kinematics (IK) problem is critical for robot-assisted minimally invasive surgery (RMIS), where satisfying the remote center of motion (RCM) constraint is essential to prevent tissue damage at the incision point. Several IK strategies have been proposed for RMIS, including classical inverse Jacobian IK and optimization-based approaches. However, these methods have limitations and perform differently depending on the kinematic configuration. To address these challenges, we propose a novel concurrent IK framework that combines the strengths of both approaches and explicitly incorporates RCM constraints and joint limits into the optimization process. In this paper, we present the design and implementation of concurrent inverse kinematics solvers, as well as experimental validation in both simulation and real-world scenarios. Concurrent IK solvers outperform single-method solvers, achieving a 100% solve rate and reducing the IK solving time by up to 85% for an endoscope positioning task and 37% for a tool pose control task. In particular, the combination of an iterative inverse Jacobian method with a hierarchical quadratic programming method showed the highest average solve rate and lowest computation time in real-world experiments. Our results demonstrate that concurrent IK solving provides a novel and effective solution to the constrained IK problem in RMIS applications.

Funder

Japan Science and Technology Agency

Japan Society for the Promotion of Science

Publisher

MDPI AG

Subject

Electrical and Electronic Engineering,Biochemistry,Instrumentation,Atomic and Molecular Physics, and Optics,Analytical Chemistry

Reference45 articles.

1. A Review on Tactile Displays for Conventional Laparoscopic Surgery;Colan;Surgeries,2022

2. Guthart, G.S., and Salisbury, J.K. (2000, January 24–28). The Intuitive telesurgery system: Overview and application. Proceedings of the 2000 IEEE International Conference on Robots and Automation (ICRA), San Francisco, CA, USA.

3. Accelerating Surgical Robotics Research: A Review of 10 Years with the da Vinci Research Kit;Mariani;IEEE Robot. Autom. Mag.,2021

4. Autonomous Coordinated Control of the Light Guide for Positioning in Vitreoretinal Surgery;Koyama;IEEE Trans. Med. Robot. Bionics,2022

5. Colan, J., Nakanishi, J., Aoyama, T., and Hasegawa, Y. (2020). A Cooperative Human-Robot Interface for Constrained Manipulation in Robot-Assisted Endonasal Surgery. Appl. Sci., 10.

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