Accuracy of pedicle screw insertion by AIRO® intraoperative CT in complex spinal deformity assessed by a new classification based on technical complexity of screw insertion
暂无分享,去创建一个
[1] Xavier Banse,et al. Radiation dose reduction in thoracic and lumbar spine instrumentation using navigation based on an intraoperative cone beam CT imaging system: a prospective randomized clinical trial , 2017, European Spine Journal.
[2] Beth A Schueler,et al. Switching to a Pediatric Dose O-Arm Protocol in Spine Surgery Significantly Reduced Patient Radiation Exposure , 2016, Journal of pediatric orthopedics.
[3] Y. Qiu,et al. Does intraoperative navigation improve the accuracy of pedicle screw placement in the apical region of dystrophic scoliosis secondary to neurofibromatosis type I: comparison between O-arm navigation and free-hand technique , 2016, European Spine Journal.
[4] Y. Qiu,et al. The Superiority of Intraoperative O-arm Navigation-assisted Surgery in Instrumenting Extremely Small Thoracic Pedicles of Adolescent Idiopathic Scoliosis , 2016, Medicine.
[5] Bernd Hamm,et al. Accuracy and workflow of navigated spinal instrumentation with the mobile AIRO® CT scanner , 2016, European Spine Journal.
[6] Steven L. Hartmann,et al. Spinal Navigation and Imaging: History, Trends, and Future , 2015, IEEE Transactions on Medical Imaging.
[7] Michael Putzier,et al. A New Navigational Tool for Pedicle Screw Placement in Patients With Severe Scoliosis: A Pilot Study to Prove Feasibility, Accuracy, and Identify Operative Challenges , 2014, Clinical spine surgery.
[8] Doniel Drazin,et al. Image-guided navigation and video-assisted thoracoscopic spine surgery: the second generation. , 2014, Neurosurgical focus.
[9] Rupert Reichart,et al. CT-navigation versus fluoroscopy-guided placement of pedicle screws at the thoracolumbar spine: single center experience of 4,500 screws , 2013, European Spine Journal.
[10] R. Härtl,et al. Pedicle screw navigation: a systematic review and meta-analysis of perforation risk for computer-navigated versus freehand insertion. , 2012, Journal of neurosurgery. Spine.
[11] Yan Wang,et al. Application of Intraoperative Computed Tomography With or Without Navigation System in Surgical Correction of Spinal Deformity: A Preliminary Result of 59 Consecutive Human Cases , 2012, Spine.
[12] Tao Li,et al. [Clinical significance of thoracic pedicle classification by inner cortical width of pedicles on CT images in posterior vertebral column resection for treatment of rigid and severe spinal deformities]. , 2012, Zhongguo xiu fu chong jian wai ke za zhi = Zhongguo xiufu chongjian waike zazhi = Chinese journal of reparative and reconstructive surgery.
[13] Nikolaos K. Paschos,et al. Accuracy of pedicle screw placement: a systematic review of prospective in vivo studies comparing free hand, fluoroscopy guidance and navigation techniques , 2012, European Spine Journal.
[14] L. Lenke,et al. A Novel Pedicle Channel Classification Describing Osseous Anatomy: How Many Thoracic Scoliotic Pedicles Have Cancellous Channels? , 2010, Spine.
[15] W. Tian,et al. Placement of pedicle screws using three-dimensional fluoroscopy-based navigation in lumbar vertebrae with axial rotation , 2010, European Spine Journal.
[16] Paul A Gardner,et al. Intraoperative computed tomography image-guided navigation for posterior thoracolumbar spinal instrumentation in spinal deformity surgery. , 2010, Neurosurgical focus.
[17] Jérôme Tonetti,et al. Fluoroscopy-based navigation system in spine surgery , 2007, Proceedings of the Institution of Mechanical Engineers. Part H, Journal of engineering in medicine.
[18] Constantin Schizas,et al. Pedicle Screw Placement Accuracy: A Meta-analysis , 2007, Spine.
[19] S Vidyadhara,et al. Randomized Clinical Study to Compare the Accuracy of Navigated and Non-Navigated Thoracic Pedicle Screws in Deformity Correction Surgeries , 2007, Spine.
[20] K. White,et al. Pullout Strength of Thoracic Pedicle Screw Instrumentation: Comparison of the Transpedicular and Extrapedicular Techniques , 2006, Spine.
[21] Achim Elfering,et al. Nonoperative Treatment for Adolescent Idiopathic Scoliosis: A 10- to 60-Year Follow-up With Special Reference to Health-Related Quality of Life , 2006, Spine.
[22] L. Lenke,et al. Evaluation of Pedicle Screw Placement in the Deformed Spine Using Intraoperative Plain Radiographs: A Comparison With Computerized Tomography , 2005, Spine.
[23] Samuel K. Cho,et al. Comparative Analysis of Pedicle Screw Versus Hook Instrumentation in Posterior Spinal Fusion of Adolescent Idiopathic Scoliosis , 2004, Spine.
[24] Samuel K. Cho,et al. Comparative Analysis of Pedicle Screw Versus Hybrid Instrumentation in Posterior Spinal Fusion of Adolescent Idiopathic Scoliosis , 2004, Spine.
[25] L. Lenke,et al. Pedicle Morphology In Thoracic Adolescent Idiopathic Scoliosis: Is Pedicle Fixation an Anatomically Viable Technique? , 2000, Spine.
[26] S. Weinstein,et al. The Management of Scoliosis in Neurofibromatosis , 1997 .
[27] H. Halm,et al. Pedicle Screw Instrumentation of the Thoracic Spine in Idiopathic Scoliosis , 1997, Spine.
[28] W. Castro,et al. Accuracy of Pedicle Screw Placement in Lumbar Vertebrae , 1996, Spine.
[29] S. Gertzbein,et al. Accuracy of Pedicular Screw Placement In Vivo , 1990, Spine.
[30] W. Tian,et al. Accuracy of lower cervical pedicle screw placement with assistance of distinct navigation systems: a human cadaveric study , 2012, European Spine Journal.
[31] William H. Judy,et al. The Measurement, Reporting, and Management of Radiation Dose in CT , 2008 .
[32] W. Eckelman,et al. NCRP report no. 93: Ionizing radiation exposure of the population of the United States: National Council on Radiation Protection and Measurements, Bethesda, Maryland (1987). US$15.00 , 1988 .