Multicriterial CNN based beam generation for robotic radiosurgery of the prostate

Author:

Gerlach Stefan1,Fürweger Christoph23,Hofmann Theresa2,Schlaefer Alexander1

Affiliation:

1. Institute of Medical Technology, Hamburg University of Technology , Hamburg , Germany

2. Europäisches Cyberknife Zentrum München-Großhadern , Munich , Germany

3. Department of Stereotaxy and Functional Neurosurgery, University of Cologne, Faculty of Medicine and University Hospital Cologne , Cologne , Germany

Abstract

Abstract Although robotic radiosurgery offers a flexible arrangement of treatment beams, generating treatment plans is computationally challenging and a time consuming process for the planner. Furthermore, different clinical goals have to be considered during planning and generally different sets of beams correspond to different clinical goals. Typically, candidate beams sampled from a randomized heuristic form the basis for treatment planning. We propose a new approach to generate candidate beams based on deep learning using radiological features as well as the desired constraints. We demonstrate that candidate beams generated for specific clinical goals can improve treatment plan quality. Furthermore, we compare two approaches to include information about constraints in the prediction. Our results show that CNN generated beams can improve treatment plan quality for different clinical goals, increasing coverage from 91.2 to 96.8% for 3,000 candidate beams on average. When including the clinical goal in the training, coverage is improved by 1.1% points.

Publisher

Walter de Gruyter GmbH

Subject

Biomedical Engineering

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