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gpu based tomotherapy dose calculation engine  (TomoTherapy)

 
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    TomoTherapy gpu based tomotherapy dose calculation engine
    Gpu Based Tomotherapy Dose Calculation Engine, supplied by TomoTherapy, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
    https://www.bioz.com/product/gpu+dose+engine/gpu+based+tomotherapy+dose+calculation+engine/pm22894403-201-14-16
    Average 90 stars, based on 1 article reviews
    gpu based tomotherapy dose calculation engine - by Bioz Stars, 2026-09
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    Article Title: Quantitative characterization of tomotherapy MVCT dosimetry.
    Article Snippet: Megavoltage computed tomography (MVCT) is used as image guidance for patient setup in almost every tomotherapy treatment.. Frequent use of ionizing radiation for image guidance has raised concern of imaging dose.. The purpose of this work is to quantify and characterize tomotherapy MVCT dosimetry.

    Article Title: Novel inverse planning optimization algorithm for robotic radiosurgery: First clinical implementation and dosimetric evaluation.
    Article Snippet: The first optimization algorithm making use of graphical processing unit (GPU)-based dose calculation was introduced in 2012 for Tomotherapy (Accuray Incorporated, USA) treatment planning.

    Article Title: 56th ANNUAL MEETING AND EXHIBITION
    Article Snippet: REVIEWERS N. Agazaryan, P. Alaei, A. Alessio, H. Al-Hallaq, A. Altman, M. Andre, E. Angel, K. Antes, J. Antolak, F. Araki, L. Archambault, M. Aristophanous, S. Armato, B. Arnold, M. Aspradakis, S. Avery, D. Bakalyar, P. Bakic, J. Balter, L. Beaulieu, S. Becker, R. Behling, E. Bender, S. Benedict, S. Bentzen, R. Berbeco, T. Bichay, P. Biggs, B. Blankenship, C. Bloch, W. Bolch, C. Borras, T. Bortfeld, S. Both, J. Bourland, S. Brady, I. Brezovich, K. Brock, K. Brown, S. Brown, D. Brown, W. Butler, C. Cagnon, J. Cai, Y. Cao, D. Carlson, H. Chan, M. Chan, J. Chang, S. Chang, Z. Chang, H. Chen, Z. Chen, G. Chen, J. Chen, Q. Chen, Y. Chen, C. Cheng, I. Chetty, K. Cheung, S. Cho, Y. Cho, J. Chow, C. Chuang, G. Clarke, J. Clements, D. Cody, D. Connor, R. Cormack, A. Corrao, L. Court, O. Craciunescu, J. Cui, J. Cunha, B. Curran, M. Dahlbom, M. Danielsson, I. Das, L. Dauer, S. Davis, J.. De Wyngaert, J. Deasy, J. DeMarco, S. Devic, L. DeWerd, S. Dieterich, G. Ding, Q. Diot, J. Dobbins, L. Dong, W. D'Souza, W. Du, J. Ducote, P. Dunscombe, I. El Naqa, C. Esquivel, B. Faddegon, F. Fahey, B. Fahimian, R. Fahrig, K. Farahani, J. Farr, W. Feng, A. Fenster, V. Feygelman, M. Fix, T. Flohr, R. Flynn, D. Followill, J. Fontenot, E. Ford, R. Foster, J. Fowlkes, M. Fox, B. Fraass, P. Francescon, E. Frey, H. Gao, O. Gayou, W. Geiser, J. Gibbons, M. Giger, M. Gillin, E. Gingold, S. Glick, S. Goddu, F. Goerner, M. Goodsitt, J. Goodwin, J. Gordon, E. Graves, A. Greener, X. Gu, H. Guan, M. Guerrero, P. Gueye, F. Guo, S. Hadley, F. Hager, J. Halama, P. Halvorsen, X. Han, J. Hanley, J. Hazle, M. Herman, J. Hevezi, J. Hiatt, D. Hintenlang, C. Holdsworth, L. Hong, M. Howard, R. Howell, D. Hristov, W. Hsi, J. Hsieh, Y. Hu, C. Hua, K. Huff, G. Hugo, K. Hulme, J. Humm, M. Hunt, M. Huq, G. Ibbott, D. Ionascu, E. Jackson, D. Jaffray, S. Jani, R. Jeraj, X. Jia, G. Jia, S. Jiang, J. Jin, A. Jones, D. Jordan, M. Kachelriess, G. Kagadis, K. Kanal, H. Kang, R. Kapoor, S. Kappadath, A. Karellas, P. Keall, C. Keener, M. Kessler, R. Keyes, Y. Kim, G. Kim, J. Kim, M. Kim, P. Kinahan, M. King, E. Klein, T. Knoos, J. Kofler, J. Kruse, S. Kry, R. Kudchadker, F. Lacroix, C. Lai, J. Lamb, K. Langen, U. Langner, R. Lee, C. Lee, S. Leng, S. Leon, J. Lewis, S. Li, X. Li, J. Li, H. Li, X. Li, H. Li, Y. Li, T. Li, X. Li, X. Li, B. Libby, J. Limmer, P. Lindsay, C. Liu, B. Liu, T. Liu, W. Liu, X. Liu, T. LoSasso, D. Low, J. Lowenstein, Z. Lu, H. Lu, W. Lu, Y. Lyatskaya, C. Ma, J. Ma, J. MacFall, M. Madsen, G. Mageras, M. Mahesh, H. Malhotra, P. Mallick, P. Manser, A. Markovic, M. Martin, A. Mascia, J. Masten, R. Mather, K. Matthews, M. Matuszak, P. Mavroidis, O. Mawlawi, C. Mayo, C. McCollough, S. McCullough, P. McDermott, J. McDonough, M. McEwen, K. McGee, S. McGuire, M. McKee, M. McKetty, M. McNitt-Gray, T. McNutt, J. Mechalakos, D. Medich, S. Meeks, M. Meltsner, M. Miften, D. Mihailidis, C. Mistretta, M. Mitch, V. Moiseenko, A. Molineu, S. Molloi, V. Montemayor, J. Moran, E. Moros, D. Moseley, F. Mourtada, M. Moyers, S. Mutic, M. Nakamura, D. Nazareth, K. Nie, R. Nishikawa, T. Nurushev, M. O'Connor, U. Oelfke, A. Olch, M. Oldham, Z. Ouhib, N. Ozturk, H. Paganetti, H. Palmans, J. Palta, T. Pan, N. Papanikolaou, S. Park, M. Park, S. Park, K. Parodi, B. Patyal, D. Pavord, D. Peck, N. Pelc, S. Pella, J.. Perks, J. Perl, P. Petti, D. Pfeiffer, M. Phillips, T. Podder, F. Poenisch, B. Pogue, J. Polf, R. Popple, J. Pouliot, R. Price, J. Prisciandaro, A. Pugachev, T. Purdie, A. Rahmim, F. Ranallo, C. Reft, J. Reiff, I. Reiser, N. Remmes, B. Ren, L. Ren, S. Richard, S. Richardson, M. Rivard, S. Rivetti, P. Roberson, D. Robinson, R. Rodgers, L. Rothenberg, D. Ruan, M. Rutstein, M. Rzeszotarski, J. Sabol, B. Sahiner, N. Sahoo, M. Salehpour, C. Saw, D. Scanderbeg, S. Schafer, M. Schell, D. Schlesinger, T. Schmidt, C. Schmidtlein, D. Schofield, E. Schreibmann, B. Schueler, R. Schulte, I. Sechopoulos, J. Seco, W. Sensakovic, C. Serago, J. Seuntjens, G. Sgouros, G. Sharp, M. Sharpe, K. Sheng, D. Shepard, C. Shi, C. Sibata, J. Siebers, J. Siewerdsen, D. Simpkin, W. Smith, K. Smith, M. Snyder, J. Soen, T. Solberg, W. Song, M. Speidel, J. St. Germain, K. Stantz, G. Starkschall, J. Star-Lack, S. Stathakis, R. Staton, J. Stayman, S. Steciw, R. Stern, D. Stevens, R. Stewart, K. Stump, M. Su, T. Suh, O. Suleiman, M. Supanich, S. Sutlief, K. Suzuki, K. Swanson, D. Switzer, K. 8 2014 AAPM Annual Meeting Program 8 Medical Physics, Vol.

    Article Title: ARCHER RT – A GPU-based and photon-electron coupled Monte Carlo dose computing engine for radiation therapy: Software development and application to helical tomotherapy
    Article Snippet: The novelty of this paper: (1) it focuses on GPU-based tomotherapy dose calculations and evaluates three clinical cases in terms of dose contours, DVHs, and gamma analysis. (2) It reports for the first time the evaluation of the “heterogeneous architecture” involving a host CPU and different GPUs as “devices” including NVIDIA M2090 (six cards), K20, and K40 cards, thus providing valuable insight into emerging computer hardware technologies. (3) To achieve a fair comparison, this study develops the MC code for both the CPU and GPU platforms using the multithreaded CPU code in OpenMP to maximize the use of CPU computing power. (4) It implements a variance reduction technique on GPU and discusses the efficiency discrepancies on different hardwares.

    Article Title: Analysis of Clinical Patient-Specific Pre-Treatment Quality Assurance with the New Helical TomoTherapy® Platform, following the AAPM TG-218 Report
    Article Snippet: Chen Q, Lu W, Chen Y, Chen M, Henderson D, Sterpin E. Validation of GPU based TomoTherapy dose calculation engine: TomoTherapy GPU dose validation.

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    Article Title: A nonvoxel-based dose convolution/superposition algorithm optimized for scalable GPU architectures.
    Article Snippet: A nonvoxel-based dose convolution/superposition algorithm optimized for scalable GPU architectures J. Neylon, K. Sheng, V. Yu, Q. Chen, D. A.. Low, P. Kupelian, and A. Santhanam Citation: Medical Physics 41, 101711 (2014); doi: 10.1118/1.4895822 View online: http://dx.doi.org/10.1118/1.4895822 View Table of Contents: http://scitation.aip.org/content/aapm/journal/medphys/41/10?ver=pdfcov Published by the American Association of Physicists in Medicine Articles you may be interested in A GPU based high-resolution multilevel biomechanical head and neck model for validating deformable image registration Med.. Phys.

    Article Title: Clinical implementation of an exit detector-based dose reconstruction tool for helical tomotherapy delivery quality assurance.
    Article Snippet: Liverpool and Macarthur Cancer Therapy Centres and Ingham Institute, NSW, Australia Centre for Medical Radiation Physics, University of Wollongong, NSW, Australia Institute of Medical Physics, school of Physics, University of Sydney, NSW, Australia South West Sydney Clinical School, School of Medicine, University of NSW, Australia Department of Human Oncology, University of Wisconsin School of Medicine and Public Health, Madison, WI, USA

    Article Title: A delivery quality assurance tool based on the actual leaf open times in tomotherapy.
    Article Snippet: Purpose: To validate a delivery quality assurance (DQA) protocol for tomotherapy based on the measurement of the leaf open times (LOTs).. In addition, to show the correlation between the mean relative LOT discrepancy and the dose deviation in the planning target volume (PTV).. Materials and methods: We used a LOT measurement algorithm presented in a previous work on our two tomotherapy treatment units (TOMO1 and TOMO2).



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