Publication details

Preoperative trajectory planning for percutaneous procedures in deformable environments

Authors

HAMZÉ Noura PETERLÍK Igor COTIN Stéphane ESSERT Caroline

Year of publication 2016
Type Article in Periodical
Magazine / Source Computerized Medical Imaging and Graphics
MU Faculty or unit

Institute of Computer Science

Citation
Web http://www.sciencedirect.com/science/article/pii/S0895611115001433
Doi http://dx.doi.org/10.1016/j.compmedimag.2015.10.002
Field Informatics
Keywords Constraint solving; Optimization; Trajectory planning; Flexible needles; Biomechanics; Deformable models; Finite Element Method (FEM); Interventional radiology; Percutaneous procedures; Radiofrequency ablation; Cryoablation
Description In image-guided percutaneous interventions, a precise planning of the needle path is a key factor to a successful intervention. In this paper we propose a novel method for computing a patient-specific optimal path for such interventions, accounting for both the deformation of the needle and soft tissues due to the insertion of the needle in the body. To achieve this objective, we propose an optimization method for estimating preoperatively a curved trajectory allowing to reach a target even in the case of tissue motion and needle bending. Needle insertions are simulated and regarded as evaluations of the objective function by the iterative planning process. In order to test the planning algorithm, it is coupled with a fast needle insertion simulation involving a flexible needle model and soft tissue finite element modeling, and experimented on the use-case of thermal ablation of liver tumors. Our algorithm has been successfully tested on twelve datasets of patient-specific geometries. Fast convergence to the actual optimal solution has been shown. This method is designed to be adapted to a wide range of percutaneous interventions.

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