| Literature DB >> 22330090 |
Benjamin Clasie1, Nicolas Depauw, Maurice Fransen, Carles Gomà, Hamid Reza Panahandeh, Joao Seco, Jacob B Flanz, Hanne M Kooy.
Abstract
Proton, as well as other ion, beams applied by electro-magnetic deflection in pencil-beam scanning (PBS) are minimally perturbed and thus can be quantified a priori by their fundamental interactions in a medium. This a priori quantification permits an optimal reduction of characterizing measurements on a particular PBS delivery system. The combination of a priori quantification and measurements will then suffice to fully describe the physical interactions necessary for treatment planning purposes. We consider, for proton beams, these interactions and derive a 'Golden' beam data set. The Golden beam data set quantifies the pristine Bragg peak depth-dose distribution in terms of primary, multiple Coulomb scatter, and secondary, nuclear scatter, components. The set reduces the required measurements on a PBS delivery system to the measurement of energy spread and initial phase space as a function of energy. The depth doses are described in absolute units of Gy(RBE) mm² Gp⁻¹, where Gp equals 10⁹ (giga) protons, thus providing a direct mapping from treatment planning parameters to integrated beam current. We used these Golden beam data on our PBS delivery systems and demonstrated that they yield absolute dosimetry well within clinical tolerance.Entities:
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Year: 2012 PMID: 22330090 PMCID: PMC3387676 DOI: 10.1088/0031-9155/57/5/1147
Source DB: PubMed Journal: Phys Med Biol ISSN: 0031-9155 Impact factor: 3.609