Genetic algorithm as a tool for detection setup optimisation: SiFi-CC case study
Jonas Kasper, Awal Awal, Ronja Hetzel, Magdalena Ko{\l}odziej, Katarzyna Rusiecka, Achim Stahl, Ming-Liang Wong, Aleksandra Wro\'nska

TL;DR
This paper demonstrates that a genetic algorithm can optimize the geometry of a Compton camera for proton therapy dose verification, enabling accurate detection of proton beam range shifts in real-time.
Contribution
The study introduces a genetic algorithm-based approach to optimize SiFi-CC Compton camera geometry for improved proton therapy monitoring.
Findings
GA-optimized configuration detects 5 mm proton range shifts with 2 mm resolution.
Best geometry achieved an imaging sensitivity of 5.58e-5.
Optimized setup reliably detects clinically relevant proton range shifts.
Abstract
Objective: Proton therapy is a precision-focused cancer treatment where accurate proton beam range monitoring is critical to ensure effective dose delivery. This can be achieved by prompt gamma detection with a Compton camera like the SiFi-CC. This study aims to show the feasibility of optimising the geometry of SiFi-CC Compton camera for verification of dose distribution via prompt gamma detection using a genetic algorithm (GA). Approach: The SiFi-CC key geometric parameters for optimisation with the GA are the source-to-scatterer and scatterer-to-absorber distances, and the module thicknesses. The optimisation process was conducted with a software framework based on the Geant4 toolkit, which included detailed and realistic modelling of gamma interactions, detector response, and further steps such as event selection and image reconstruction. The performance of each individual…
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Taxonomy
TopicsSilicon and Solar Cell Technologies
