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An overview of recent developments in FLUKA PET tools

The new developments of the FLUKA Positron-Emission-Tomography (PET) tools are detailed. FLUKA is a fully integrated Monte Carlo (MC) particle transport code, used for an extended range of applications, including Medical Physics. Recently, it provided the medical community with dedicated simulation...

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Autores principales: Augusto, R S, Bauer, J, Bouhali, O, Cuccagna, C, Gianoli, C, Kozłowska, W S, Ortega, P G, Tessonnier, T, Toufique, Y, Vlachoudis, V, Parodi, K, Ferrari, A
Lenguaje:eng
Publicado: 2018
Materias:
Acceso en línea:https://dx.doi.org/10.1016/j.ejmp.2018.06.636
http://cds.cern.ch/record/2644813
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author Augusto, R S
Bauer, J
Bouhali, O
Cuccagna, C
Gianoli, C
Kozłowska, W S
Ortega, P G
Tessonnier, T
Toufique, Y
Vlachoudis, V
Parodi, K
Ferrari, A
author_facet Augusto, R S
Bauer, J
Bouhali, O
Cuccagna, C
Gianoli, C
Kozłowska, W S
Ortega, P G
Tessonnier, T
Toufique, Y
Vlachoudis, V
Parodi, K
Ferrari, A
author_sort Augusto, R S
collection CERN
description The new developments of the FLUKA Positron-Emission-Tomography (PET) tools are detailed. FLUKA is a fully integrated Monte Carlo (MC) particle transport code, used for an extended range of applications, including Medical Physics. Recently, it provided the medical community with dedicated simulation tools for clinical applications, including the PET simulation package. PET is a well-established imaging technique in nuclear medicine, and a promising method for clinical in vivo treatment verification in hadrontherapy. The application of clinically established PET scanners to new irradiation environments such as hadrontherapy requires further experimental and theoretical research to which MC simulations could be applied. The FLUKA PET tools, besides featuring PET scanner models in its library, allow the configuration of new PET prototypes via the FLUKA Graphical User Interface (GUI) Flair. Both the beam time structure and scan time can be specified by the user, reproducing PET acquisitions in time, in a particle therapy scenario. Furthermore, different scoring routines allow the analysis of single and coincident events, and identification of parent isotopes generating annihilation events. Two reconstruction codes are currently supported: the Filtered Back–Projection (FBP) and Maximum–Likelihood Expectation Maximization (MLEM), the latter embedded in the tools. Compatibility with other reconstruction frameworks is also possible. The FLUKA PET tools package has been successfully tested for different detectors and scenarios, including conventional functional PET applications and in beam PET, either using radioactive sources, or simulating hadron beam irradiations. The results obtained so far confirm the FLUKA PET tools suitability to perform PET simulations in R&D; environment.
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institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2018
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spelling oai-inspirehep.net-16811722022-08-10T12:29:36Zdoi:10.1016/j.ejmp.2018.06.636http://cds.cern.ch/record/2644813engAugusto, R SBauer, JBouhali, OCuccagna, CGianoli, CKozłowska, W SOrtega, P GTessonnier, TToufique, YVlachoudis, VParodi, KFerrari, AAn overview of recent developments in FLUKA PET toolsDetectors and Experimental TechniquesThe new developments of the FLUKA Positron-Emission-Tomography (PET) tools are detailed. FLUKA is a fully integrated Monte Carlo (MC) particle transport code, used for an extended range of applications, including Medical Physics. Recently, it provided the medical community with dedicated simulation tools for clinical applications, including the PET simulation package. PET is a well-established imaging technique in nuclear medicine, and a promising method for clinical in vivo treatment verification in hadrontherapy. The application of clinically established PET scanners to new irradiation environments such as hadrontherapy requires further experimental and theoretical research to which MC simulations could be applied. The FLUKA PET tools, besides featuring PET scanner models in its library, allow the configuration of new PET prototypes via the FLUKA Graphical User Interface (GUI) Flair. Both the beam time structure and scan time can be specified by the user, reproducing PET acquisitions in time, in a particle therapy scenario. Furthermore, different scoring routines allow the analysis of single and coincident events, and identification of parent isotopes generating annihilation events. Two reconstruction codes are currently supported: the Filtered Back–Projection (FBP) and Maximum–Likelihood Expectation Maximization (MLEM), the latter embedded in the tools. Compatibility with other reconstruction frameworks is also possible. The FLUKA PET tools package has been successfully tested for different detectors and scenarios, including conventional functional PET applications and in beam PET, either using radioactive sources, or simulating hadron beam irradiations. The results obtained so far confirm the FLUKA PET tools suitability to perform PET simulations in R&D; environment.oai:inspirehep.net:16811722018
spellingShingle Detectors and Experimental Techniques
Augusto, R S
Bauer, J
Bouhali, O
Cuccagna, C
Gianoli, C
Kozłowska, W S
Ortega, P G
Tessonnier, T
Toufique, Y
Vlachoudis, V
Parodi, K
Ferrari, A
An overview of recent developments in FLUKA PET tools
title An overview of recent developments in FLUKA PET tools
title_full An overview of recent developments in FLUKA PET tools
title_fullStr An overview of recent developments in FLUKA PET tools
title_full_unstemmed An overview of recent developments in FLUKA PET tools
title_short An overview of recent developments in FLUKA PET tools
title_sort overview of recent developments in fluka pet tools
topic Detectors and Experimental Techniques
url https://dx.doi.org/10.1016/j.ejmp.2018.06.636
http://cds.cern.ch/record/2644813
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