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A Fast Soft Robotic Laser Sweeping System Using Data-Driven Modeling Approach

delete2023-08-01
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OA
AI
K
Kui Wang
X
Xiaomei Wang
J
Justin Ho
方格 cover
方格 (Ge Fang)
B
Bohao Zhu
R
Rongying Xie
Y
Yunhui Liu
K
Kwok Wai Samuel Au
J
Jason Y. K. Chan
K
Ka‐Wai Kwok *
DOI:10.1109/TRO.2023.3262118delete
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Abstract

Abstract

En 中文
Soft robots have great potential in surgical applications due to their compliance and adaptability to their environment. However, their flexibility and nonlinearity bring challenges for precise modeling, sensing, and control, especially in constrained cavities. In this article, a simple, compact two-segment soft robot for flexible laser ablation is proposed. The proximal hydraulic-driven segment can offer omnidirectional bending so as to navigate toward lesions. The distal segment driven by tendons enables precise, fast steering of laser collimator for laser sweeping on lesion targets. The dynamics of such mechanical steering motion can be enhanced with a metal spring backbone integrated along the collimator, thus facilitating the control with certain linearity and responsiveness. A soft robot modeling and control scheme based on Koopman operators is proposed. We also design a disturbance observer so as to incorporate the controller feedback with real-time fiber optic shape sensing. Experimental validation is conducted on simulated or ex-vivo laser ablation tasks, thus evaluating our control strategies in laser path following across various contours/patterns. As a result, such a simple compact laser manipulation can perform up to 6 Hz sweeping with precision of path following errors below 1 mm. Such modeling and control scheme could also be used on an endoscopic laser ablation robot with unsymmetric mechanism driven by two tendons.
Keywords:
Robot sensing systems
Sensors
Robots
Shape
Bending
Multicore processing
Soft robotics
Fiber optic shape sensing
Koopman operator
laser sweeping
soft robot modeling and control

Journal

IEEE Transactions on Robotics cover
IEEE Transactions on Robotics
IF:
10.5
Papers:
3.3K
Citations:
2.8W

Organization

U
University of Hong Kong
Scholars:
4.1W
Papers: 3.9W
Citations: 10.1W
C
Chinese University of Hong Kong
Scholars:
3.4W
Papers: 3.2W
Citations: 5.6W