Author:
Villagran Carlos R. Tercero, ,Ikeda Seiichi,Fukuda Toshio,Sekiyama Kosuke,Okada Yuta,Uchiyama Tomomi,Negoro Makoto,Takahashi Ikuo, , , ,
Abstract
Magnetic motion capture sensors (MMCS) are not commonly used for robot control due to the need for complex, resource-consuming calibration to correct error introduced by the magnetic sensor. We propose avoiding such calibration using a rule-based controller that only uses spatial coordinates from the magnetic sensor. This controller uses a sparse look-up table of spatial coordinates and actions conducted by the robot and reacts to the presence of the sensor near reference points. The control method was applied to manipulate a robotic camera to track a catheter-shaped sensor inside vessels silicone models. A second evaluation was done guiding a mechanism to reconstruct catheter insertion in major silicone vasculature models. The robotic camera tracked the catheter by reacting to the sensor within 10 mm of each reference point. The catheter insertion mechanism reconstructed the catheter trajectory by reacting to the sensor within 6 mm of each reference point. We found that the proposed method allowed robot control in a bounded space without having to correct for the magnetic tracker output distortion.
Publisher
Fuji Technology Press Ltd.
Subject
Electrical and Electronic Engineering,General Computer Science
Reference14 articles.
1. G. A. Krombach, A. Mahnken, J. Tacke, G. Staatz, S. Haller, C. C. A. Nolte-Ernsting, J. Meyer, P. Haage, and R. W. Günther “US-guided nephrostomy with the aid of a magnetic field-based navigation device in the porcine pelvicaliceal system,” J. Vascular Interventional Radiology, Vol.12, pp. 623-628, 2001.
2. A. Chung, P. Edwards, F. Deligianni, and G. Yang, “Freehand Cocalibration of Optical and Electromagnetic Trackers for Navigated Bronchoscopy,” The Second Int.Workshop on Medical Imaging and Augmented Reality (MIAR 2004), Beijing, China, 2004.
3. K. Nakada, M. Nakamoto, Y. Sato, K. Konishi, M. Hashizume, and S. Tamura, “A rapid method for magnetic tracker calibration using a magneto-optic hybrid tracker,” MICCAI 2003, Lecture Notes in Computer Science (2879), Springer-Verlag, pp. 285-293, 2003.
4. M. Livingstone and A. State, “Magnetic tracker for improved augmented reality registration,” PESCENCE: Teleoperators and Virtual Environments, Vol.6, No.5, pp. 532-546, 1997.
5. M. Ikits, J. Brederson, C. Hansen, and J. Hollerbach, “An improved calibration framework for electromagnetic tracking devices,” Proc. of the IEEE Virtual Reality, pp. 63-70, 2000.
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