Proton dose calculation with LSTM networks in presence of a magnetic field

被引:2
|
作者
Radonic, Domagoj [1 ,2 ]
Xiao, Fan [1 ]
Wahl, Niklas [3 ,4 ]
Voss, Luke [3 ,4 ,5 ]
Neishabouri, Ahmad [4 ,6 ]
Delopoulos, Nikolaos [1 ]
Marschner, Sebastian [1 ]
Corradini, Stefanie [1 ]
Belka, Claus [1 ,7 ,8 ,9 ]
Dedes, George [2 ]
Kurz, Christopher [1 ]
Landry, Guillaume [1 ]
机构
[1] Ludwig Maximilians Univ Munchen, LMU Univ Hosp, Dept Radiat Oncol, Munich, Germany
[2] Ludwig Maximilians Univ Munchen, Dept Med Phys, Munich, Germany
[3] German Canc Res Ctr, Dept Med Phys Radiat Oncol, Heidelberg, Germany
[4] Heidelberg Inst Radiat Oncol HIRO, Natl Ctr Radiat Oncol NCRO, Heidelberg, Germany
[5] Ruprecht Karl Univ Heidelberg, Inst Comp Sci, Heidelberg, Germany
[6] German Canc Res Ctr, Clin Cooperat Unit Radiat Oncol, Heidelberg, Germany
[7] German Canc Consortium DKTK, Partner Site Munich, Munich, Germany
[8] LMU Univ Hosp Munich, Munich, Germany
[9] Bavarian Canc Res Ctr BZKF, Erlangen, Germany
关键词
dose calculation; deep learning; MR-guided proton therapy; treatment planning; LSTM; MONTE-CARLO; TREATMENT UNCERTAINTIES; RANGE UNCERTAINTIES; THERAPY; SENSITIVITY; FEASIBILITY; DEFLECTION; PLANS; MRI;
D O I
10.1088/1361-6560/ad7f1e
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Objective. To present a long short-term memory (LSTM) network-based dose calculation method for magnetic resonance (MR)-guided proton therapy. Approach. 35 planning computed tomography (CT) images of prostate cancer patients were collected for Monte Carlo (MC) dose calculation under a perpendicular 1.5 T magnetic field. Proton pencil beams (PB) at three energies (150, 175, and 200 MeV) were simulated (7560 PBs at each energy). A 3D relative stopping power cuboid covering the extent of the PB dose was extracted and given as input to the LSTM model, yielding a 3D predicted PB dose. Three single-energy (SE) LSTM models were trained separately on the corresponding 150/175/200 MeV datasets and a multi-energy (ME) LSTM model with an energy embedding layer was trained on either the combined dataset with three energies or a continuous energy (CE) dataset with 1 MeV steps ranging from 125 to 200 MeV. For each model, training and validation involved 25 patients and 10 patients were for testing. Two single field uniform dose prostate treatment plans were optimized and recalculated with MC and the CE model. Results. Test results of all PBs from the three SE models showed a mean gamma passing rate (2%/2 mm, 10% dose cutoff) above 99.9% with an average center-of-mass (COM) discrepancy below 0.4 mm between predicted and simulated trajectories. The ME model showed a mean gamma passing rate exceeding 99.8% and a COM discrepancy of less than 0.5 mm at the three energies. Treatment plan recalculation by the CE model yielded gamma passing rates of 99.6% and 97.9%. The inference time of the models was 9-10 ms per PB. Significance. LSTM models for proton dose calculation in a magnetic field were developed and showed promising accuracy and efficiency for prostate cancer patients.
引用
收藏
页数:17
相关论文
共 50 条
  • [1] Development of an algorithm for proton dose calculation in magnetic fields
    Gu, Yue
    Wang, Yuxiang
    Liu, Meiqi
    Lu, Hsiao-Ming
    Yang, Yidong
    MEDICAL PHYSICS, 2024, 51 (10) : 7511 - 7522
  • [2] Fast Monte Carlo dose calculation in proton therapy
    Holmes, Jason
    Feng, Hongying
    Zhang, Lian
    Fix, Michael K.
    Jiang, Steve B.
    Liu, Wei
    PHYSICS IN MEDICINE AND BIOLOGY, 2024, 69 (17)
  • [3] Proton dose calculation with transformer: Transforming spot map to dose
    Tang, Xueyan
    Tseung, Hok Wan Chan
    Pepin, Mark D.
    Johnson, Jed E.
    Moseley, Doug J.
    Routman, David M.
    Qian, Jing
    MEDICAL PHYSICS, 2025,
  • [4] Long short-term memory networks for proton dose calculation in highly heterogeneous tissues
    Neishabouri, Ahmad
    Wahl, Niklas
    Mairani, Andrea
    Koethe, Ullrich
    Bangert, Mark
    MEDICAL PHYSICS, 2021, 48 (04) : 1893 - 1908
  • [5] Millisecond speed deep learning based proton dose calculation with Monte Carlo accuracy
    Pastor-Serrano, Oscar
    Perko, Zoltan
    PHYSICS IN MEDICINE AND BIOLOGY, 2022, 67 (10)
  • [6] Experimental assessment of proton dose calculation accuracy in inhomogeneous media
    Sorriaux, J.
    Testa, M.
    Paganetti, H.
    de Xivry, J. Orban
    Lee, J. A.
    Traneus, E.
    Souris, K.
    Vynckier, S.
    Sterpin, E.
    PHYSICA MEDICA-EUROPEAN JOURNAL OF MEDICAL PHYSICS, 2017, 38 : 10 - 15
  • [7] Improving proton dose calculation accuracy by using deep learning
    Wu, Chao
    Nguyen, Dan
    Xing, Yixun
    Montero, Ana Barragan
    Schuemann, Jan
    Shang, Haijiao
    Pu, Yuehu
    Jiang, Steve
    MACHINE LEARNING-SCIENCE AND TECHNOLOGY, 2021, 2 (01):
  • [8] Proton dosimetry in a magnetic field: Measurement and calculation of magnetic field correction factors for a plane-parallel ionization chamber
    Gebauer, Benjamin
    Baumann, Kilian-Simon
    Fuchs, Hermann
    Georg, Dietmar
    Oborn, Brad M.
    Looe, Hui-Khee
    Luehr, Armin
    MEDICAL PHYSICS, 2024, 51 (03) : 2293 - 2305
  • [9] Quantification of Proton Dose Calculation Accuracy in the Lung
    Grassberger, Clemens
    Daartz, Juliane
    Dowdell, Stephen
    Ruggieri, Thomas
    Sharp, Greg
    Paganetti, Harald
    INTERNATIONAL JOURNAL OF RADIATION ONCOLOGY BIOLOGY PHYSICS, 2014, 89 (02): : 424 - 430
  • [10] Characterization of EBT3 radiochromic films for dosimetry of proton beams in the presence of magnetic fields
    Padilla-Cabal, Fatima
    Kuess, Peter
    Georg, Dietmar
    Palmans, Hugo
    Fetty, Lukas
    Fuchs, Hermann
    MEDICAL PHYSICS, 2019, 46 (07) : 3278 - 3284