DocumentCode
1285702
Title
Closed-Loop Planar Motion Control of a Steerable Probe With a “Programmable Bevel” Inspired by Nature
Author
Ko, Seong Young ; Frasson, Luca ; Baena, Ferdinando Rodriguez y
Author_Institution
Dept. of Mech. Eng., Imperial Coll. London, London, UK
Volume
27
Issue
5
fYear
2011
Firstpage
970
Lastpage
983
Abstract
Percutaneous intervention has attracted significant interest in recent years, but many of today´s needles and catheters can only provide limited control of the trajectory between an entry site and soft tissue target. In order to address this fundamental shortcoming in minimally invasive surgery, we describe the first prototype of a bioinspired multipart probe that can steer along planar trajectories within a compliant medium by means of a novel “programmable bevel,” where the steering angle becomes a function of the offset between interlocked probe segments. A kinematic model of the flexible probe and programmable bevel arrangement is derived. Several parameters of the kinematic model are then calibrated experimentally with a fully functional scaled-up prototype, which is 12 mm in diameter. A closed-loop control strategy with feed-forward and feedback components is then derived and implemented in vitro using an approximate linearization strategy that was first developed for car-like robots. Experimental results demonstrate satisfactory 2-D trajectory following of the prototype (0.68 mm tracking error, with 1.45 mm standard deviation) using an electromagnetic position sensor that is embedded at the tip of the probe.
Keywords
closed loop systems; feedback; feedforward; medical robotics; mobile robots; motion control; path planning; position control; surgery; bioinspired multipart probe; closed-loop control strategy; closed-loop planar motion control; electromagnetic position sensor; feedback component; feedforward component; flexible probe; interlocked probe segment; invasive surgery; kinematic model; medical robot; motion planning; programmable bevel arrangement; steerable probe; steering angle; Bicycles; Biological tissues; Kinematics; Motion segmentation; Needles; Probes; Trajectory; Biologically inspired robots; closed-loop control; medical robots and systems; needle steering; nonholonomic motion planning;
fLanguage
English
Journal_Title
Robotics, IEEE Transactions on
Publisher
ieee
ISSN
1552-3098
Type
jour
DOI
10.1109/TRO.2011.2159411
Filename
5966364
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