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Medical Physics, ISSN 0094-2405, 01/2015, Volume 42, Issue 1, pp. 28 - 39
Purpose: The use of magnetic resonance imaging (MRI) in radiation oncology is expanding rapidly, and more clinics are integrating MRI into their radiation... 
biomedical MRI | Coils; Windings; Conductive connections | Tissues | Medical image contrast | MRI simulation | MRI‐guided radiotherapy | Digital computing or data processing equipment or methods, specially adapted for specific applications | Involving electronic [emr] or nuclear [nmr] magnetic resonance, e.g. magnetic resonance imaging | Computed tomography | Quality assurance in radiotherapy | tumours | medical image processing | Semiconductor device fabrication | coils | MRI‐based radiotherapy | liver | Radiation treatment | MRI‐based radiation therapy | Biological material, e.g. blood, urine; Haemocytometers | brain | MRI: anatomic, functional, spectral, diffusion | MRIgRT | Image data processing or generation, in general | quality assurance | radiation therapy | cancer | Medical magnetic resonance imaging | Therapeutic applications, including brachytherapy | MRI-guided radiotherapy | MRI-based radiotherapy | MRI-based radiation therapy | HEAD | NONUNIFORMITY CORRECTION | DELINEATION | ANGIOGRAPHY | THERAPY | RADIOTHERAPY | NECK | RADIOLOGY, NUCLEAR MEDICINE & MEDICAL IMAGING | REGISTRATION ACCURACY | IMAGE REGISTRATION | GEOMETRIC DISTORTION | Magnetic Resonance Imaging - instrumentation | Radiotherapy Planning, Computer-Assisted - methods | Humans | Radio Waves | Male | Neoplasms - radiotherapy | Neoplasms - diagnosis | Radiotherapy, Image-Guided - instrumentation | PATIENTS | NMR IMAGING | QUALITY ASSURANCE | SARCOMAS | SIMULATION | 60 APPLIED LIFE SCIENCES | ACCURACY | PLANNING
Journal Article
Medical Physics, ISSN 0094-2405, 10/2015, Volume 42, Issue 10, pp. 5828 - 5837
Journal Article
Medical Physics, ISSN 0094-2405, 08/2013, Volume 40, Issue 8, pp. 082301 - n/a
Journal Article
Medical Physics, ISSN 0094-2405, 02/2013, Volume 40, Issue 2, pp. 024301 - n/a
Journal Article
Medical Physics, ISSN 0094-2405, 07/2014, Volume 41, Issue 7, pp. 072505 - n/a
Purpose: Multimodality imaging has become an important adjunct of state-of-the-art radiation therapy (RT) treatment planning. Recently, simultaneous PET/MR... 
biomedical MRI | Coils; Windings; Conductive connections | Medical image noise | RF coil holders | biomedical equipment | Scintigraphy | PET/MR hybrid imaging | phantoms | PET attenuation correction | Digital computing or data processing equipment or methods, specially adapted for specific applications | Computed tomography | Involving electronic [emr] or nuclear [nmr] magnetic resonance, e.g. magnetic resonance imaging | RT treatment planning | medical image processing | RT table overlay | Positron emission tomography (PET) | coils | Magnetic resonance | Medical treatment planning | Photons | Biological material, e.g. blood, urine; Haemocytometers | Image quality | Magnetic resonance imaging | Measuring half‐life of a radioactive substance | Image data processing or generation, in general | radiation therapy | Medical magnetic resonance imaging | Therapeutic applications, including brachytherapy | positron emission tomography | PET quantification | PROSTATE | MRI | ATTENUATION CORRECTION | SURFACE COILS | SCANNER | CLINICAL-EXPERIENCE | IMAGES | RADIOTHERAPY | REGISTRATION | RADIOLOGY, NUCLEAR MEDICINE & MEDICAL IMAGING | Neck - anatomy & histology | Neck - diagnostic imaging | Radiotherapy Planning, Computer-Assisted - methods | Humans | Radiotherapy Planning, Computer-Assisted - instrumentation | Magnetic Resonance Imaging - methods | Head - anatomy & histology | Male | Multimodal Imaging - instrumentation | Patient Positioning - instrumentation | Positron-Emission Tomography - methods | Positron-Emission Tomography - instrumentation | Equipment Design | Magnetic Resonance Imaging - instrumentation | Radiotherapy, Image-Guided - methods | Multimodal Imaging - methods | Head - diagnostic imaging | Adult | Aged | Radiotherapy, Image-Guided - instrumentation | Phantoms, Imaging | HEAD | PATIENTS | IMAGE PROCESSING | NMR IMAGING | PHANTOMS | NECK | COMPARATIVE EVALUATIONS | 60 APPLIED LIFE SCIENCES | ACCURACY
Journal Article
Journal Article
Medical Physics, ISSN 0094-2405, 11/2016, Volume 43, Issue 11, pp. 5808 - 5816
Purpose: Magnetic resonance guided teletherapy systems aspire to image the patient concurrently with the radiation delivery. Thus, the radiofrequency (RF)... 
biomedical MRI | conductors (electric) | Of hard‐magnetic materials | Coils; Windings; Conductive connections | surface dose | dosimetry | Electromagnets; Actuators including electromagnets | skin | Scintigraphy | permanent magnets | RF coils | buildup dose | Metallic thin films | Electron beams | Involving electronic [emr] or nuclear [nmr] magnetic resonance, e.g. magnetic resonance imaging | copper | linear accelerators | Magnetic materials | polymers | pipes | Electron scattering | coils | electromagnets | Therapeutic applications | Pipes; Joints or fittings for pipes; Supports for pipes, cables or protective tubing; Means for thermal insulation in general | Magnetic field measurements | Photons | Biological material, e.g. blood, urine; Haemocytometers | Magnetic resonance imaging | Contaminants | MR‐linac | radiation therapy | linac‐MR | Magnetic fields | Dosimetry/exposure assessment | linac-MR | MR-linac | LINAC | ELECTRON | MRI SCANNER | MONTE-CARLO | IMPACT | ORIENTATION | INCREASE | SYSTEMS | RADIOTHERAPY ACCELERATOR | DOSIMETRY | RADIOLOGY, NUCLEAR MEDICINE & MEDICAL IMAGING | Radiotherapy Dosage | Artifacts | Magnetic Resonance Imaging | Skin - radiation effects | Humans | Radio Waves | Skin - diagnostic imaging | Magnetic Fields | Radiotherapy, Image-Guided | Radiometry - instrumentation | Photons - therapeutic use
Journal Article
Journal Article
Journal Article
Medical Physics, ISSN 0094-2405, 12/2013, Volume 40, Issue 12, pp. 121705 - n/a
Journal Article
Journal Article
Medical Physics, ISSN 0094-2405, 02/2015, Volume 42, Issue 2, pp. 925 - 936
Purpose: In the framework of developing the integration of a MRI‐Linac system, configurations of MRI‐Linac units were simulated in order to improve the dose... 
biomedical MRI | Coils; Windings; Conductive connections | magnetic field | dosimetry | biomedical equipment | skin | Scintigraphy | geant4 | Tissues | phantoms | Digital computing or data processing equipment or methods, specially adapted for specific applications | Monte Carlo methods | Computed tomography | Involving electronic [emr] or nuclear [nmr] magnetic resonance, e.g. magnetic resonance imaging | Clinical applications | linear accelerators | MRI‐Linac | Computerised tomographs | Lorentz group | coils | magnetic fields | mammography | Therapeutic applications | Photons | Biological material, e.g. blood, urine; Haemocytometers | cardiology | lung | X‐ray reflection | planning | computerised tomography | Lungs | radiation therapy | X‐ray scattering | geometry | Therapeutic applications, including brachytherapy | medical computing | breast | Dosimetry/exposure assessment | MRI-Linac | ELECTRON | PHOTON | MAGNETIC-FIELDS | SIMULATION | SCANNER | CANCER | MONTE-CARLO | THERAPY | ACCELERATOR | GENT4 | RADIOLOGY, NUCLEAR MEDICINE & MEDICAL IMAGING | Radiotherapy Dosage | Magnetic Resonance Imaging | Breast Neoplasms - radiotherapy | Humans | Radiometry | Phantoms, Imaging | Monte Carlo Method | Radiotherapy Planning, Computer-Assisted | Particle Accelerators | PATIENTS | MONTE CARLO METHOD | LUNGS | 60 APPLIED LIFE SCIENCES | COMPUTERIZED TOMOGRAPHY | CHEST | HEART | LINEAR ACCELERATORS | RADIATION DOSE DISTRIBUTIONS | NMR IMAGING | PHOTON BEAMS | RADIOTHERAPY | SKIN | DOSIMETRY | GEOMETRY
Journal Article