DocumentCode
2544074
Title
Sensor and Sampling-based motion planning for minimally invasive robotic exploration of osteolytic lesions
Author
Liu, Wen P. ; Lucas, Blake C. ; Guerin, Kelleher ; Plaku, Erion
Author_Institution
Dept. of Comput. Sci., Johns Hopkins Univ., Baltimore, MD, USA
fYear
2011
fDate
25-30 Sept. 2011
Firstpage
1346
Lastpage
1352
Abstract
This paper develops a sensor- and sampling-based motion planner to control a surgical robot in order to explore osteolytic lesions in orthopedic surgery. Because of the difficulty of using conventional surgical tools, such exploration is needed in minimally-invasive treatments of ??particle diseases,?? which commonly result from material wear in total hip replacements. Since a geometric model of the osteolytic cavity is not always available, the planner relies only on a robot model that can detect collisions. As such, the planner can work in conjunction with real systems. The planner effectively combines global and local exploration. The global layer determines which regions to explore, while local exploration uses information gain to move the robot tip to positions in the region that increase exploration. Simulation experiments are conducted using a snake-like cannula robot on surgically-relevant osteolytic cavities. As desired in minimally-invasive treatment of osteolysis, performance is measured as the volume explored by the robot tip. The proposed method achieves 83-92% performance rate when compared to methods that require 3D models of osteolytic cavities. Comparisons to sensor-based related work (i.e., no 3D models) show significant improvements in performance.
Keywords
diseases; medical robotics; path planning; position control; sampling methods; sensors; surgery; global exploration planner; local exploration planner; minimally invasive robotic exploration; orthopedic surgery; osteolytic cavity model; osteolytic lesion; particle disease treatment; sampling-based motion planning; sensor-based motion planning; snake-like cannula robot; surgical robot; total hip replacement; Cavity resonators; Collision avoidance; Lesions; Robot kinematics; Robot sensing systems; Solid modeling;
fLanguage
English
Publisher
ieee
Conference_Titel
Intelligent Robots and Systems (IROS), 2011 IEEE/RSJ International Conference on
Conference_Location
San Francisco, CA
ISSN
2153-0858
Print_ISBN
978-1-61284-454-1
Type
conf
DOI
10.1109/IROS.2011.6094599
Filename
6094599
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