DocumentCode :
1756015
Title :
Error Analysis of FBG-Based Shape Sensors for Medical Needle Tracking
Author :
Henken, Kirsten R. ; Dankelman, Jenny ; van den Dobbelsteen, John J. ; Cheng, Leo K. ; van der Heiden, Maurits S.
Author_Institution :
Dept. of Biomech. Eng., Delft Univ. of Technol., Delft, Netherlands
Volume :
19
Issue :
5
fYear :
2014
fDate :
Oct. 2014
Firstpage :
1523
Lastpage :
1531
Abstract :
Robotic needle steering requires accurate spatial information about the needle tip. Presumably, fiber Bragg gratings (FBGs) can provide this information at an appropriate update rate. We performed an extensive error analysis to quantify the accuracy of needle tip tracking with FBGs and to assess the suitability of this method for robotic needle steering. An FBG-based shape sensing model was determined and simulations were performed to quantify the effect of design parameters on the position accuracy. Inputs that were investigated include accuracy of wavelength measurement and sensor geometry as well as different sensor configurations and interpolation models. For the purpose of validation of the simulations, two needles with two different configurations of FBGs were built and evaluated. The simulations show that the accuracy of FBG-based shape sensing of a needle can be in the order of 10% of the deflection at the tip, depending on the configuration. However, tip deflections that are smaller than approximately 1 mm cannot be detected accurately. Calibration of the needle reduces the bias, but does not improve the accuracy, because of drift in read-out of the FGBs. The analysis shows that the combined sources of errors limit the accuracy of tip estimation to approximately 1 mm, although the accuracy is influenced by the sensor configuration as well. This accuracy is suitable for common medical applications like taking biopsies or performing ablation.
Keywords :
Bragg gratings; calibration; fibre optic sensors; interpolation; medical robotics; needles; position control; FBG-based shape sensing model; FBG-based shape sensors; ablation; biopsies; design parameters; error analysis; fiber Bragg gratings; interpolation models; medical needle tracking; needle calibration; needle tip tracking; position accuracy; robotic needle steering; sensor configurations; sensor geometry; wavelength measurement; Accuracy; Fiber gratings; Needles; Sensors; Shape; Strain; Fiber Bragg grating (FBG); medical robotics; needle; shape sensing;
fLanguage :
English
Journal_Title :
Mechatronics, IEEE/ASME Transactions on
Publisher :
ieee
ISSN :
1083-4435
Type :
jour
DOI :
10.1109/TMECH.2013.2287764
Filename :
6661467
Link To Document :
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