Needle path planning and steering in a three-dimensional non-static environment using two-dimensional ultrasound images

Author:

Vrooijink Gustaaf J.1,Abayazid Momen1,Patil Sachin2,Alterovitz Ron3,Misra Sarthak1

Affiliation:

1. MIRA—Institute for Biomedical Technology and Technical Medicine (Robotics and Mechatronics), University of Twente, The Netherlands

2. Department of Electrical Engineering and Computer Sciences, University of California at Berkeley, USA

3. Department of Computer Science, University of North Carolina at Chapel Hill, USA

Abstract

Needle insertion is commonly performed in minimally invasive medical procedures such as biopsy and radiation cancer treatment. During such procedures, accurate needle tip placement is critical for correct diagnosis or successful treatment. Accurate placement of the needle tip inside tissue is challenging, especially when the target moves and anatomical obstacles must be avoided. We develop a needle steering system capable of autonomously and accurately guiding a steerable needle using two-dimensional (2D) ultrasound images. The needle is steered to a moving target while avoiding moving obstacles in a three-dimensional (3D) non-static environment. Using a 2D ultrasound imaging device, our system accurately tracks the needle tip motion in 3D space in order to estimate the tip pose. The needle tip pose is used by a rapidly exploring random tree-based motion planner to compute a feasible needle path to the target. The motion planner is sufficiently fast such that replanning can be performed repeatedly in a closed-loop manner. This enables the system to correct for perturbations in needle motion, and movement in obstacle and target locations. Our needle steering experiments in a soft-tissue phantom achieves maximum targeting errors of 0.86 ± 0.35 mm (without obstacles) and 2.16 ± 0.88 mm (with a moving obstacle).

Publisher

SAGE Publications

Subject

Applied Mathematics,Artificial Intelligence,Electrical and Electronic Engineering,Mechanical Engineering,Modelling and Simulation,Software

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