Simulation and Experimental Studies of Real-Time Motion Compensation Using an Articulated Robotic Manipulator System

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The purpose of this study is to install a system that compensated for the respiration motion using an articulated robotic manipulator couch which enables a wide range of motions that a Stewart platform cannot provide and to evaluate the performance of various prediction algorithms including proposed algorithm. For that purpose, we built a miniature couch tracking system comprising an articulated robotic manipulator, 3D optical tracking system, a phantom that mimicked respiratory motion, and control software. We performed simulations and experiments using respiratory data of 12 patients to investigate the feasibility of the system and various prediction algorithms, namely linear extrapolation (LE) and double exponential smoothing (ES2) with averaging methods. We confirmed that prediction algorithms worked well during simulation and experiment, with the ES2-averaging algorithm showing the best results. The simulation study showed 43% average and 49% maximum improvement ratios with the ES2-averaging algorithm, and the experimental study with the QUASAR™ phantom showed 51% average and 56% maximum improvement ratios with this algorithm. Our results suggest that the articulated robotic manipulator couch system with the ES2-averaging prediction algorithm can be widely used in the field of radiation therapy, providing a highly efficient and utilizable technology that can enhance the therapeutic effect and improve safety through a noninvasive approach.
Publisher
Korean Society of Medical Physics (KAMJE)
Issue Date
2017-12
Language
English
Citation

Progress in Medical Physics, v.28, no.4, pp.171 - 180

ISSN
2508-4445
DOI
10.14316/pmp.2017.28.4.171
URI
http://hdl.handle.net/10203/274349
Appears in Collection
RIMS Journal Papers
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