Radiation dose of digital radiography (DR) versus micro-dose x-ray (EOS) on patients with adolescent idiopathic scoliosis: 2016 SOSORT- IRSSD “John Sevastic Award” Winner in Imaging Research
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Jack C. Y. Cheng | Steve C. N. Hui | Bobby K. W. Ng | W. Chu | Jean-Philippe Pialasse | T. Lam | S. Hui | Jean-Philippe Pialasse | Judy Y. H. Wong | Tsz-ping Lam | Winnie C. W. Chu | B. Ng | J. Cheng | J. Cheng
[1] P. Newton,et al. Comparison of 3-Dimensional Spinal Reconstruction Accuracy: Biplanar Radiographs With EOS Versus Computed Tomography , 2012, Spine.
[2] Kashif Mirza,et al. Film retakes in digital and conventional radiography. , 2008, Journal of the College of Physicians and Surgeons--Pakistan : JCPSP.
[3] W. Skalli,et al. Sagittal alignment of the cervical spine in adolescent idiopathic scoliosis treated by posteromedial translation , 2013, European Spine Journal.
[4] R. Vetter. ICRP Publication 103, The Recommendations of the International Commission on Radiological Protection , 2008 .
[5] R. Winter,et al. Adolescent idiopathic scoliosis , 1991, The Lancet.
[6] H. Guérini,et al. Standardized way for imaging of the sagittal spinal balance , 2011, European Spine Journal.
[7] Marilyn Stovall,et al. Breast Cancer Mortality After Diagnostic Radiography: Findings From the U.S. Scoliosis Cohort Study , 2000, Spine.
[8] B. Schueler,et al. Cumulative Radiation Exposure With EOS Imaging Compared With Standard Spine Radiographs , 2015, Spine deformity.
[9] A. Feydy,et al. Diagnosis of vertebral fractures using a low-dose biplanar imaging system , 2015, Osteoporosis International.
[10] C. Pfirrmann,et al. Femoral and tibial torsion measurements with 3D models based on low-dose biplanar radiographs in comparison with standard CT measurements. , 2012, AJR. American journal of roentgenology.
[11] B. Ilharreborde,et al. EOS microdose protocol for the radiological follow-up of adolescent idiopathic scoliosis , 2016, European Spine Journal.
[12] Wafa Skalli,et al. 3D analysis of brace treatment in idiopathic scoliosis , 2013, European Spine Journal.
[13] Environmental tobacco smoke and lung cancer in nonsmokers: does time since exposure play a role? , 1998 .
[14] Catherine Adamsbaum,et al. Evaluation of a new low-dose digital X-ray device: first dosimetric and clinical results in children , 1998, Pediatric Radiology.
[15] C. Pfirrmann,et al. Three-dimensional hindfoot alignment measurements based on biplanar radiographs: comparison with standard radiographic measurements , 2013, Skeletal Radiology.
[16] W. Chu,et al. MRI-based morphological evidence of spinal cord tethering predicts curve progression in adolescent idiopathic scoliosis. , 2015, The spine journal : official journal of the North American Spine Society.
[17] J. Lazenneca,et al. Pelvis and total hip arthroplasty acetabular component orientations in sitting and standing positions: Measurements reproductibility with EOS imaging system versus conventional radiographies , 2011 .
[18] C. Pfirrmann,et al. Femoral and tibial torsion measurement in children and adolescents: comparison of 3D models based on low-dose biplanar radiography and low-dose CT. , 2014, AJR. American journal of roentgenology.
[19] C. M. Bone,et al. The risk of carcinogenesis from radiographs to pediatric orthopaedic patients. , 2000, Journal of pediatric orthopedics.
[20] M. Tapiovaara,et al. Organ Dose Calculation in Medical X Ray Examinations by the Program PCXMC , 1998 .
[21] J. Cook,et al. Key factors in the optimization of paediatric X-ray practice. , 2001, The British journal of radiology.
[22] R K Sachs,et al. Radiation-induced cancer: a modern view. , 2012, The British journal of radiology.
[23] P. Allard,et al. Three-dimensional vertebral wedging and pelvic asymmetries in the early stages of adolescent idiopathic scoliosis. , 2015, The spine journal : official journal of the North American Spine Society.
[24] A. Levy,et al. Adverse Reproductive Outcomes among Women Exposed to Low Levels of Ionizing Radiation from Diagnostic Radiography for Adolescent Idiopathic Scoliosis , 1998, Epidemiology.
[25] A. Sommet,et al. Low-dose biplanar radiography can be used in children and adolescents to accurately assess femoral and tibial torsion and greatly reduce irradiation , 2015, European Radiology.
[26] M. Tunyogi-Csapó,et al. Accuracy and reliability of coronal and sagittal spinal curvature data based on patient-specific three-dimensional models created by the EOS 2D/3D imaging system. , 2012, The spine journal : official journal of the North American Spine Society.
[27] Samuel Kadoury,et al. Global geometric torsion estimation in adolescent idiopathic scoliosis , 2013, Medical & Biological Engineering & Computing.
[28] Peter L. Kogon,et al. How do you critique your radiographs , 1993 .
[29] Hubert Labelle,et al. Diagnostic Imaging of Spinal Deformities: Reducing Patients Radiation Dose With a New Slot-Scanning X-ray Imager , 2010, Spine.
[30] Georges Charpak,et al. The Use of Multiwire Proportional Counters to Select and Localize Charged Particles , 1968 .
[31] F R Verdun,et al. Occupational and patient exposure as well as image quality for full spine examinations with the EOS imaging system. , 2014, Medical physics.
[32] Stefano Negrini,et al. SOSORT 2012 consensus paper: reducing x-ray exposure in pediatric patients with scoliosis , 2014, Scoliosis.
[33] James A. Hanley,et al. Reducing the Lifetime Risk of Cancer From Spinal Radiographs Among People With Adolescent Idiopathic Scoliosis , 1996, Spine.
[34] J. Hanley,et al. Projecting the lifetime risk of cancer from exposure to diagnostic ionizing radiation for adolescent idiopathic scoliosis. , 1994, Health physics.
[35] L. Thompson. Recognition, signaling, and repair of DNA double-strand breaks produced by ionizing radiation in mammalian cells: the molecular choreography. , 2012, Mutation research.
[36] N. Boutry,et al. Idiopathic scoliosis in children and adolescents: assessment with a biplanar X-ray device , 2014, Insights into Imaging.