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Updated: May 26, 2026

Use of 3D Robotic Ultrasound for In Vivo Analysis of Mouse Kidneys
Published on: August 12, 2021
Detection of Curved Robots using 3D Ultrasound
Hongliang Ren1, Nikolay V Vasilyev, Pierre E Dupont
1Hongliang Ren, Ph.D., hongliang.ren@childrens.harvard.edu , Nikolay V. Vasilyev, M.D., Nikolay.Vasilyev@cardio.chboston.org and Pierre Dupont, Ph.D., pierre.dupont@childrens.harvard.edu are with the Department of Cardiac Surgery, Children's Hospital Boston, Harvard Medical School, 300 Longwood Ave., Boston, MA, 02115 USA.
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Three-dimensional ultrasound can be an effective imaging modality for image-guided interventions since it enables visualization of both the instruments and the tissue. For robotic applications, its realtime frame rates create the potential for image-based instrument tracking and servoing. These capabilities can enable improved instrument visualization, compensation for tissue motion as well as surgical task automation. Continuum robots, whose shape comprises a smooth curve along their length, are well suited for minimally invasive procedures. Existing techniques for ultrasound tracking, however, are limited to straight, laparoscopic-type instruments and thus are not applicable to continuum robot tracking. Toward the goal of developing tracking algorithms for continuum robots, this paper presents a method for detecting a robot comprised of a single constant curvature in a 3D ultrasound volume. Computational efficiency is achieved by decomposing the six-dimensional circle estimation problem into two sequential three-dimensional estimation problems. Simulation and experiment are used to evaluate the proposed method.

