DocumentCode
1014148
Title
Image-Guided Robotic Flexible Needle Steering
Author
Glozman, Daniel ; Shoham, Moshe
Author_Institution
Technion-Israel Inst. of Technol., Haifa
Volume
23
Issue
3
fYear
2007
fDate
6/1/2007 12:00:00 AM
Firstpage
459
Lastpage
467
Abstract
This paper presents a robotic system for steering under real-time fluoroscopic guidance a flexible needle in soft tissue. Given a target and possible obstacle locations, the computer calculates the flexible needle-tip trajectory that avoids the obstacle and hits the target. Using an inverse kinematics algorithm, the needle base maneuvers required for a tip to follow this trajectory are calculated, enabling a robot to perform controlled needle insertion. Assuming small displacements, the flexible needle is modeled as a linear beam supported by virtual springs, where the stiffness coefficients of the springs can vary along the needle. Using this simplified model, the forward and inverse kinematics of the needle are solved analytically, enabling both path planning and path correction in real time. The needle shape is detected in real time from fluoroscopic images, and the controller commands the needle base motion that minimizes the needle tip error. This approach was verified experimentally using a robot to maneuver the base of a flexible needle inserted into a muscle tissue. Along the 40-mm trajectory that avoids the obstacle and hits the target, the error stayed below the 0.5-mm level. This study demonstrates the ability to perform closed-loop control and steering of a flexible needle by maneuvering the needle base so that its tip achieves a planned trajectory.
Keywords
closed loop systems; collision avoidance; fluorescence; medical image processing; medical robotics; robot vision; closed-loop control; flexible needle steering; image-guided robotic; inverse kinematics; muscle tissue; needle insertion; obstacle locations; real-time fluoroscopic guidance; Biological tissues; Kinematics; Motion detection; Needles; Path planning; Real time systems; Robot control; Shape control; Springs; Trajectory; Biomedical imaging; flexible structures; medical treatment; robots;
fLanguage
English
Journal_Title
Robotics, IEEE Transactions on
Publisher
ieee
ISSN
1552-3098
Type
jour
DOI
10.1109/TRO.2007.898972
Filename
4252165
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