Literature DB >> 31945191

A standardized commissioning framework of Monte Carlo dose calculation algorithms for proton pencil beam scanning treatment planning systems.

Chih-Wei Chang1, Sheng Huang2, Joseph Harms1, Jun Zhou1, Rongxiao Zhang3, Anees Dhabaan1, Roelf Slopsema1, Minglei Kang4, Tian Liu1, Mark McDonald1, Katja Langen1, Liyong Lin1.   

Abstract

PURPOSE: Treatment planning systems (TPSs) from different vendors can involve different implementations of Monte Carlo dose calculation (MCDC) algorithms for pencil beam scanning (PBS) proton therapy. There are currently no guidelines for validating non-water materials in TPSs. Furthermore, PBS-specific parameters can vary by 1-2 orders of magnitude among different treatment delivery systems (TDSs). This paper proposes a standardized framework on the use of commissioning data and steps to validate TDS-specific parameters and TPS-specific heterogeneity modeling to potentially reduce these uncertainties.
METHODS: A standardized commissioning framework was developed to commission the MCDC algorithms of RayStation 8A and Eclipse AcurosPT v13.7.20 using water and non-water materials. Measurements included Bragg peak depth-dose and lateral spot profiles and scanning field outputs for Varian ProBeam. The phase-space parameters were obtained from in-air measurements and the number of protons per MU from output measurements of 10 × 10 cm2 square fields at a 2 cm depth. Spot profiles and various PBS field measurements at additional depths were used to validate TPS. Human tissues in TPS, Gammex phantom materials, and artificial materials were used for the TPS benchmark and validation.
RESULTS: The maximum differences of phase parameters, spot sigma, and divergence between MCDC algorithms are below 4.5 µm and 0.26 mrad in air, respectively. Comparing TPS to measurements at depths, both MC algorithms predict the spot sigma within 0.5 mm uncertainty intervals, the resolution of the measurement device. Beam Configuration in AcurosPT is found to underestimate number of protons per MU by ~2.5% and requires user adjustment to match measured data, while RayStation is within 1% of measurements using Auto model. A solid water phantom was used to validate the range accuracy of non-water materials within 1% in AcurosPT.
CONCLUSIONS: The proposed standardized commissioning framework can detect potential issues during PBS TPS MCDC commissioning processes, and potentially can shorten commissioning time and improve dosimetric accuracies. Secondary MCDC can be used to identify the root sources of disagreement between primary MCDC and measurement.
© 2020 American Association of Physicists in Medicine.

Entities:  

Keywords:  Eclipse AcurosPT; Monte Carlo dose calculation; RayStation; benchmark and vaildation; scanning proton therapy; treatement planning system commissioning

Mesh:

Year:  2020        PMID: 31945191     DOI: 10.1002/mp.14021

Source DB:  PubMed          Journal:  Med Phys        ISSN: 0094-2405            Impact factor:   4.071


  4 in total

1.  FLASH Radiotherapy Using Single-Energy Proton PBS Transmission Beams for Hypofractionation Liver Cancer: Dose and Dose Rate Quantification.

Authors:  Shouyi Wei; Haibo Lin; J Isabelle Choi; Robert H Press; Stanislav Lazarev; Rafi Kabarriti; Carla Hajj; Shaakir Hasan; Arpit M Chhabra; Charles B Simone; Minglei Kang
Journal:  Front Oncol       Date:  2022-01-13       Impact factor: 6.244

2.  NRG Oncology Survey of Monte Carlo Dose Calculation Use in US Proton Therapy Centers.

Authors:  Liyong Lin; Paige A Taylor; Jiajian Shen; Jatinder Saini; Minglei Kang; Charles B Simone; Jeffrey D Bradley; Zuofeng Li; Ying Xiao
Journal:  Int J Part Ther       Date:  2021-05-25

3.  Empirical quenching correction in radiochromic silicone-based three-dimensional dosimetry of spot-scanning proton therapy.

Authors:  Lia Barbosa Valdetaro; Ellen Marie Høye; Peter Sandegaard Skyt; Jørgen Breede Baltzer Petersen; Peter Balling; Ludvig Paul Muren
Journal:  Phys Imaging Radiat Oncol       Date:  2021-04-12

4.  Beam characteristics of the first clinical 360° rotational single gantry room scanning pencil beam proton treatment system and comparisons against a multi-room system.

Authors:  Charles Shang; Grant Evans; Mushfiqur Rahman; Liyong Lin
Journal:  J Appl Clin Med Phys       Date:  2020-08-13       Impact factor: 2.102

  4 in total

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