Variable length genetic algorithm with continuous parameters optimization of beam layout in proton therapy
Fran\c{c}ois Smekens, Nicolas Freud, Bruno Sixou, Guillaume Beslon and, Jean M L\'etang

TL;DR
This paper introduces a novel variable-length genetic algorithm for optimizing beam layout in proton therapy, allowing continuous parameter adjustments and exploration of irradiation schemes without technological constraints.
Contribution
It presents a new genetic optimization framework that simultaneously optimizes target points and beam angles with variable beam numbers in proton therapy planning.
Findings
Effective in elementary test cases
Demonstrates potential in realistic clinical scenarios
Allows flexible, unconstrained beam configuration optimization
Abstract
Proton therapy is a modality in fast development. Characterized by a maximum dose deposition at the end of the proton trajectory followed by a sharp fall-off, proton beams can deliver a highly conformal dose to the tumor while sparing organs at risk and surrounding healthy tissues. New treatment planning systems based on spot scanning techniques can now propose multi-field optimization. However, in most cases, this optimization only processes the field fluences whereas the choice of ballistics (field geometry) is left to the oncologist and medical physicist. In this work, we investigate a new optimization framework based on a genetic approach. This tool is intended to explore new irradiation schemes and to evaluate the potential of actual or future irradiation systems. We propose to optimize simultaneously the target points and beam incidence angles in a continuous manner and with a…
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Taxonomy
TopicsRadiation Therapy and Dosimetry · Advanced Radiotherapy Techniques · Radiation Effects in Electronics
