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Steerable needle trajectory following in the lung: Torsional deadband compensation and full pose estimation with 5dof feedback for needles passing through flexible endoscopes
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Steerable needle trajectory following in the lung: Torsional deadband compensation and full pose estimation with 5dof feedback for needles passing through flexible endoscopes

T.E. Ertop, M. Emerson, M. Rox, J. Granna, R. Webster, F. Maldonado, E. Gillaspie, M. Lester, A. Kuntz, C. Rucker, …
ASME 2020 Dynamic Systems and Control Conference, DSCC 2020, Vol.1
2020

Abstract

Automobile drivers Biofeedback Biological organs Degrees of freedom (mechanics) Driver training Educational robots Energy efficiency Energy storage Feedback Intelligent buildings Kalman filters Machine design Sliding mode control Social robots Tissue Trajectories Degree of freedom Desired trajectories Flexible endoscopes Magnetic tracking Minimally invasive Sliding mode controller Steering direction Trajectory following Needles
Bronchoscopic diagnosis and intervention in the lung is a new frontier for steerable needles, where they have the potential to enable minimally invasive, accurate access to small nodules that cannot be reliably accessed today. However, the curved, flexible bronchoscope requires a much longer needle than prior work has considered, with complex interactions between the needle and bronchoscope channel, introducing new challenges in steerable needle control. In particular, friction between the working channel and needle causes torsional windup along the bronchoscope, the effects of which cannot be directly measured at the tip of thin needles embedded with 5 degree-of-freedom magnetic tracking coils. To compensate for these effects, we propose a new torsional deadband-aware Extended Kalman Filter to estimate the full needle tip pose including the axial angle, which defines its steering direction. We use the Kalman Filter estimates with an established sliding mode controller to steer along desired trajectories in lung tissue. We demonstrate that this simple torsional deadband model is sufficient to account for the complex interactions between the needle and endoscope channel for control purposes. We measure mean final targeting error of 1.36 mm in phantom tissue and 1.84 mm in ex-vivo porcine lung, with mean trajectory following error of 1.28 mm and 1.10 mm, respectively. Copyright © 2020 ASME
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