Literature DB >> 25157579

Implementation of a triple Gaussian beam model with subdivision and redefinition against density heterogeneities in treatment planning for scanned carbon-ion radiotherapy.

T Inaniwa1, N Kanematsu, Y Hara, T Furukawa, M Fukahori, M Nakao, T Shirai.   

Abstract

Challenging issues in treatment planning for scanned carbon-ion (C-ion) therapy are (i) accurate calculation of dose distribution, including the contribution of large angle-scattered fragments, (ii) reduction in the memory space required to store the dose kernel of individual pencil beams and (iii) shortening of computation time for dose optimization and calculation. To calculate the dose contribution from fragments, we modeled the transverse dose profile of the scanned C-ion beam with the superposition of three Gaussian distributions. The development of pencil beams belonging to the first Gaussian component was calculated analytically based on the Fermi-Eyges theory, while those belonging to the second and third components were transported empirically using the measured beam widths in a water phantom. To reduce the memory space for the kernels, we stored doses only in the regions of interest considered in the dose optimization. For the final dose calculation within the patient's whole body, we applied a pencil beam redefinition algorithm. With these techniques, the triple Gaussian beam model can be applied not only to final dose calculation but also to dose optimization in treatment planning for scanned C-ion therapy. To verify the model, we made treatment plans for a homogeneous water phantom and a heterogeneous head phantom. The planned doses agreed with the measurements within ±2% of the target dose in both phantoms, except for the doses at the periphery of the target with a high dose gradient. To estimate the memory space and computation time reduction with these techniques, we made a treatment plan for a bone sarcoma case with a target volume of 1.94 l. The memory space for the kernel and the computation time for final dose calculation were reduced to 1/22 and 1/100 of those without the techniques, respectively. Computation with the triple Gaussian beam model using the proposed techniques is rapid, accurate and applicable to dose optimization and calculation in treatment planning for scanned C-ion therapy.

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Year:  2014        PMID: 25157579     DOI: 10.1088/0031-9155/59/18/5361

Source DB:  PubMed          Journal:  Phys Med Biol        ISSN: 0031-9155            Impact factor:   3.609


  7 in total

1.  Physical and biological beam modeling for carbon beam scanning at Osaka Heavy Ion Therapy Center.

Authors:  Shinichiro Fujitaka; Yusuke Fujii; Hideaki Nihongi; Satoshi Nakayama; Masaaki Takashina; Noriaki Hamatani; Toshiro Tsubouchi; Masashi Yagi; Kazumasa Minami; Kazuhiko Ogawa; Junetsu Mizoe; Tatsuaki Kanai
Journal:  J Appl Clin Med Phys       Date:  2021-05-16       Impact factor: 2.102

2.  Single-energy metal artefact reduction with CT for carbon-ion radiation therapy treatment planning.

Authors:  Kentaro Miki; Shinichiro Mori; Azusa Hasegawa; Kensuke Naganawa; Masashi Koto
Journal:  Br J Radiol       Date:  2016-03-04       Impact factor: 3.039

3.  Prediction of the minimum spacer thickness required for definitive radiotherapy with carbon ions and photons for pelvic tumors: an in silico planning study using virtual spacers.

Authors:  Masayoshi Yamada; Yuya Miyasaka; Takayuki Kanai; Hikaru Souda; Ken Uematsu; Rei Matsueda; Natsuko Yano; Shohei Kawashiro; Hiroko Akamatsu; Mayumi Harada; Yasuhito Hagiwara; Mayumi Ichikawa; Hiraku Sato; Kenji Nemoto
Journal:  J Radiat Res       Date:  2021-07-10       Impact factor: 2.724

4.  Commissioning a newly developed treatment planning system, VQA Plan, for fast-raster scanning of carbon-ion beams.

Authors:  Masashi Yagi; Toshiro Tsubouchi; Noriaki Hamatani; Masaaki Takashina; Hiroyasu Maruo; Shinichiro Fujitaka; Hideaki Nihongi; Kazuhiko Ogawa; Tatsuaki Kanai
Journal:  PLoS One       Date:  2022-05-10       Impact factor: 3.752

5.  Fast robust dose calculation on GPU for high-precision 1H, 4He, 12C and 16O ion therapy: the FRoG platform.

Authors:  Stewart Mein; Kyungdon Choi; Benedikt Kopp; Thomas Tessonnier; Julia Bauer; Alfredo Ferrari; Thomas Haberer; Jürgen Debus; Amir Abdollahi; Andrea Mairani
Journal:  Sci Rep       Date:  2018-10-04       Impact factor: 4.379

6.  Comparison of passive and scanning irradiation methods for carbon-ion radiotherapy for breast cancer.

Authors:  Hiroaki Matsubara; Kumiko Karasawa; Wataru Furuichi; Mitsuji Wakaisami; Shintaro Shiba; Masaru Wakatsuki; Tokuhiko Omatsu; Taku Inaniwa; Shigekazu Fukuda; Tadashi Kamada
Journal:  J Radiat Res       Date:  2018-09-01       Impact factor: 2.724

7.  Clinical Validation of a Ray-Casting Analytical Dose Engine for Spot Scanning Proton Delivery Systems.

Authors:  James E Younkin; Danairis Hernandez Morales; Jiajian Shen; Jie Shan; Martin Bues; Jarrod M Lentz; Steven E Schild; Joshua B Stoker; Xiaoning Ding; Wei Liu
Journal:  Technol Cancer Res Treat       Date:  2019 Jan-Dec
  7 in total

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