Compatibility of Varian 2100C gated operations with enhanced dynamic wedge and IMRT dose delivery.
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[1] A. Brahme,et al. An adaptive control algorithm for optimization of intensity modulated radiotherapy considering uncertainties in beam profiles, patient set-up and internal organ motion. , 1998, Physics in medicine and biology.
[2] M Partridge,et al. Independent verification using portal imaging of intensity-modulated beam delivery by the dynamic MLC technique. , 1998, Medical physics.
[3] J. Tsai,et al. A non-invasive immobilization system and related quality assurance for dynamic intensity modulated radiation therapy of intracranial and head and neck disease. , 1999, International journal of radiation oncology, biology, physics.
[4] G J Kutcher,et al. Intensity-modulated tangential beam irradiation of the intact breast. , 1999, International journal of radiation oncology, biology, physics.
[5] H D Kubo,et al. Potential and role of a prototype amorphous silicon array electronic portal imaging device in breathing synchronized radiotherapy. , 1999, Medical physics.
[6] D D Leavitt,et al. Dosimetric advantages of enhanced dynamic wedge in small field irradiation for the treatment of macular degeneration. , 1999, Medical dosimetry : official journal of the American Association of Medical Dosimetrists.
[7] C Liu,et al. Characterizing output for the Varian enhanced dynamic wedge field. , 1998, Medical physics.
[8] S Y Woo,et al. Clinical and financial issues for intensity-modulated radiation therapy delivery. , 1999, Seminars in radiation oncology.
[9] L J Verhey,et al. Comparison of three-dimensional conformal radiation therapy and intensity-modulated radiation therapy systems. , 1999, Seminars in radiation oncology.
[10] P. M. Len,et al. 111 Clinical experience of breathing synchronized radiotherapy procedure at the University of California Davis Cancer Center , 1999 .
[11] H. Mostafavi,et al. Breathing-synchronized radiotherapy program at the University of California Davis Cancer Center. , 2000, Medical physics.
[12] H. Sandler,et al. Optimization and clinical use of multisegment intensity-modulated radiation therapy for high-dose conformal therapy. , 1999, Seminars in radiation oncology.
[13] A L Boyer,et al. Intensity-modulated radiation therapy with dynamic multileaf collimators. , 1999, Seminars in radiation oncology.
[14] J A Purdy,et al. Multiple machine implementation of enhanced dynamic wedge. , 1998, International journal of radiation oncology, biology, physics.
[15] G J Kutcher,et al. The potential and limitations of the inverse radiotherapy technique. , 1994, Radiotherapy and oncology : journal of the European Society for Therapeutic Radiology and Oncology.
[16] J. Gibbons,et al. Calculation of enhanced dynamic wedge factors for symmetric and asymmetric photon fields. , 1998, Medical physics.
[17] S. Webb,et al. Inverse planning with constraints to generate smoothed intensity-modulated beams. , 1998, Physics in medicine and biology.
[18] J. Dempsey,et al. Quantitative dosimetric verification of an IMRT planning and delivery system. , 1998, Radiotherapy and oncology : journal of the European Society for Therapeutic Radiology and Oncology.
[19] J C Rosenwald,et al. The 'equivalent wedge' implementation of the Varian Enhanced Dynamic Wedge (EDW) into a treatment planning system. , 1999, Physics in medicine and biology.
[20] C. Ling,et al. Physical and dosimetric aspects of a multileaf collimation system used in the dynamic mode for implementing intensity modulated radiotherapy. , 1998, Medical physics.