Publication:
An efficient framework for photon Monte Carlo treatment planning

cris.virtual.author-orcid0000-0002-3911-3403
cris.virtualsource.author-orcidfb089609-c18a-4ab4-bf39-a2d95248a9a9
cris.virtualsource.author-orcidc171715f-9c9f-4166-9093-7f89b4d6ffe9
cris.virtualsource.author-orcidf062f5d8-d79b-4030-9490-a2e47daa852f
cris.virtualsource.author-orcid89463473-3fae-4697-aa8a-c8ff410d30cb
cris.virtualsource.author-orcid7708a2df-c2fe-4907-ac7d-2332c18a2c80
cris.virtualsource.author-orcidbea74ce4-3583-4adf-b0b2-09e0a36ff640
datacite.rightsmetadata.only
dc.contributor.authorFix, Michael
dc.contributor.authorManser, Peter
dc.contributor.authorFrei, Daniel
dc.contributor.authorVolken, Werner
dc.contributor.authorMini, Roberto
dc.contributor.authorBorn, Ernst Johann
dc.date.accessioned2024-10-13T17:38:28Z
dc.date.available2024-10-13T17:38:28Z
dc.date.issued2007
dc.description.abstractCurrently photon Monte Carlo treatment planning (MCTP) for a patient stored in the patient database of a treatment planning system (TPS) can usually only be performed using a cumbersome multi-step procedure where many user interactions are needed. This means automation is needed for usage in clinical routine. In addition, because of the long computing time in MCTP, optimization of the MC calculations is essential. For these purposes a new graphical user interface (GUI)-based photon MC environment has been developed resulting in a very flexible framework. By this means appropriate MC transport methods are assigned to different geometric regions by still benefiting from the features included in the TPS. In order to provide a flexible MC environment, the MC particle transport has been divided into different parts: the source, beam modifiers and the patient. The source part includes the phase-space source, source models and full MC transport through the treatment head. The beam modifier part consists of one module for each beam modifier. To simulate the radiation transport through each individual beam modifier, one out of three full MC transport codes can be selected independently. Additionally, for each beam modifier a simple or an exact geometry can be chosen. Thereby, different complexity levels of radiation transport are applied during the simulation. For the patient dose calculation, two different MC codes are available. A special plug-in in Eclipse providing all necessary information by means of Dicom streams was used to start the developed MC GUI. The implementation of this framework separates the MC transport from the geometry and the modules pass the particles in memory; hence, no files are used as the interface. The implementation is realized for 6 and 15 MV beams of a Varian Clinac 2300 C/D. Several applications demonstrate the usefulness of the framework. Apart from applications dealing with the beam modifiers, two patient cases are shown. Thereby, comparisons are performed between MC calculated dose distributions and those calculated by a pencil beam or the AAA algorithm. Interfacing this flexible and efficient MC environment with Eclipse allows a widespread use for all kinds of investigations from timing and benchmarking studies to clinical patient studies. Additionally, it is possible to add modules keeping the system highly flexible and efficient.
dc.description.numberOfPages13
dc.description.sponsorshipUniversitätsklinik für Radio-Onkologie, Medizinische Strahlenphysik
dc.identifier.isi000250443200024
dc.identifier.pmid17881793
dc.identifier.publisherDOI10.1088/0031-9155/52/19/N01
dc.identifier.urihttps://boris-portal.unibe.ch/handle/20.500.12422/97737
dc.language.isoen
dc.publisherInstitute of Physics Publishing IOP
dc.publisher.placeBristol
dc.relation.isbn17881793
dc.relation.ispartofPhysics in medicine and biology
dc.relation.issn0031-9155
dc.relation.organizationDCD5A442BAE6E17DE0405C82790C4DE2
dc.titleAn efficient framework for photon Monte Carlo treatment planning
dc.typearticle
dspace.entity.typePublication
oaire.citation.endPage37
oaire.citation.issue19
oaire.citation.startPageN425
oaire.citation.volume52
oairecerif.author.affiliationUniversitätsklinik für Radio-Onkologie, Medizinische Strahlenphysik
oairecerif.author.affiliationUniversitätsklinik für Radio-Onkologie, Medizinische Strahlenphysik
oairecerif.author.affiliationUniversitätsklinik für Radio-Onkologie, Medizinische Strahlenphysik
oairecerif.author.affiliationUniversitätsklinik für Radio-Onkologie, Medizinische Strahlenphysik
oairecerif.author.affiliationUniversitätsklinik für Radio-Onkologie, Medizinische Strahlenphysik
oairecerif.author.affiliationUniversitätsklinik für Radio-Onkologie, Medizinische Strahlenphysik
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unibe.contributor.rolecreator
unibe.contributor.rolecreator
unibe.contributor.rolecreator
unibe.contributor.rolecreator
unibe.contributor.rolecreator
unibe.description.ispublishedpub
unibe.eprints.legacyId24108
unibe.journal.abbrevTitlePHYS MED BIOL
unibe.subtype.articlejournal

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