DocumentCode :
1765569
Title :
Multistep Prediction of Physiological Tremor for Surgical Robotics Applications
Author :
Veluvolu, Kalyana C. ; Tatinati, Sivanagaraja ; Sun-Mog Hong ; Wei Tech Ang
Author_Institution :
Sch. of Electron. Eng., Kyungpook Nat. Univ., Daegu, South Korea
Volume :
60
Issue :
11
fYear :
2013
fDate :
Nov. 2013
Firstpage :
3074
Lastpage :
3082
Abstract :
Accurate canceling of physiological tremor is extremely important in robotics-assisted surgical instruments/procedures. The performance of robotics-based hand-held surgical devices degrades in real time due to the presence of phase delay in sensors (hardware) and filtering (software) processes. Effective tremor compensation requires zero-phase lag in filtering process so that the filtered tremor signal can be used to regenerate an opposing motion in real time. Delay as small as 20 ms degrades the performance of human-machine interference. To overcome this phase delay, we employ multistep prediction in this paper. Combined with the existing tremor estimation methods, the procedure improves the overall accuracy by 60% for tremor estimation compared to single-step prediction methods in the presence of phase delay. Experimental results with developed methods for 1-DOF tremor estimation highlight the improvement.
Keywords :
filtering theory; human-robot interaction; medical robotics; medical signal processing; sensors; surgery; 1-DOF tremor estimation; filtered tremor signal; filtering process; human-machine interference; multistep prediction; phase delay; physiological tremor; robotics-assisted surgical instruments; robotics-assisted surgical procedures; robotics-based hand-held surgical devices; sensors; surgical robotics applications; tremor compensation; zero-phase lag; Adaptation models; Physiology; Real-time systems; Surgical robots; Tremors; Autoregressive (AR); Kalman filter; band limited multiple linear Fourier combiner (BMFLC); inertial sensors; multistep prediction; physiological motion; tremor; Accelerometry; Algorithms; Fourier Analysis; Hand; Humans; Models, Statistical; Robotics; Surgery, Computer-Assisted; Task Performance and Analysis; Tremor;
fLanguage :
English
Journal_Title :
Biomedical Engineering, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9294
Type :
jour
DOI :
10.1109/TBME.2013.2264546
Filename :
6530703
Link To Document :
بازگشت