Generation of polychromatic projection for dedicated breast computed tomography simulation using anthropomorphic numerical phantom
暂无分享,去创建一个
Jin Sung Kim | Hosang Jeon | Hanbean Youn | Jayoung Lee | Jiho Nam | Juhye Lee | Dahl Park | Yongkan Ki | Donghyun Kim | Wontaek Kim | Juhye M. Lee | H. Jeon | J. Nam | Y. Ki | Donghyun Kim | Wontaek Kim | Jayoung Lee | Jin Sung Kim | D. Park | H. Youn
[1] Andrew D. A. Maidment,et al. Development and characterization of an anthropomorphic breast software phantom based upon region-growing algorithm. , 2011, Medical physics.
[2] R. Siddon. Fast calculation of the exact radiological path for a three-dimensional CT array. , 1985, Medical physics.
[3] B. De Man,et al. Distance-driven projection and backprojection in three dimensions. , 2004, Physics in medicine and biology.
[4] John E. Stone,et al. OpenCL: A Parallel Programming Standard for Heterogeneous Computing Systems , 2010, Computing in Science & Engineering.
[5] A. O’Connell,et al. Dedicated Cone-beam Breast Computed Tomography and Diagnostic Mammography: Comparison of Radiation Dose, Patient Comfort, And Qualitative Review of Imaging Findings in BI-RADS 4 and 5 Lesions , 2012, Journal of clinical imaging science.
[6] J. Boone,et al. An accurate method for computer-generating tungsten anode x-ray spectra from 30 to 140 kV. , 1997, Medical physics.
[7] Barry D. Van Veen,et al. Development of Anatomically Realistic Numerical Breast Phantoms With Accurate Dielectric Properties for Modeling Microwave Interactions With the Human Breast , 2008, IEEE Transactions on Biomedical Engineering.
[8] Ingrid Reiser,et al. A statistically defined anthropomorphic software breast phantom. , 2012, Medical physics.
[9] Mercedes Rodríguez-Villafuerte,et al. Medical physics : seventh mexican symposium on medical physics, México City, México 24-26 March 2003 , 2003 .
[10] Kai Yang,et al. Computer modeling of the spatial resolution properties of a dedicated breast CT system. , 2007, Medical physics.
[11] M Desco,et al. Modification of the TASMIP x-ray spectral model for the simulation of microfocus x-ray sources. , 2013, Medical physics.
[12] H. K. Kimb. A framework of modeling detector systems for computed tomography simulations , 2016 .
[13] Giovanni Mettivier,et al. Dedicated breast computed tomography: Basic aspects. , 2015, Medical physics.
[14] Kai Yang,et al. Evolution of spatial resolution in breast CT at UC Davis. , 2015, Medical physics.
[15] Bandar Al-qahtani,et al. Arachnoid Pit and Extensive Sinus Pnematization as the Cause of Spontaneous Lateral Intrasphenoidal Encephalocele , 2012, Journal of clinical imaging science.
[16] Hanbean Youn,et al. Generation of hybrid sinograms for the recovery of kV-CT images with metal artifacts for helical tomotherapy. , 2015, Medical physics.
[17] Ho Kyung Kim,et al. Theoretical Investigation of Metal Artifact Reduction Based on Sinogram Normalization in Computed Tomography , 2013 .
[18] K Bliznakova,et al. A three-dimensional breast software phantom for mammography simulation. , 2003, Physics in medicine and biology.
[19] Hao Gao. Fast parallel algorithms for the x-ray transform and its adjoint. , 2012, Medical physics.
[20] Bjorn De Sutter,et al. A Fast Algorithm to Calculate the Exact Radiological Path through a Pixel or Voxel Space , 1998 .
[21] John M Boone,et al. Methodology for generating a 3D computerized breast phantom from empirical data. , 2009, Medical physics.
[22] Lili Zhou,et al. Fast polyenergetic forward projection for image formation using OpenCL on a heterogeneous parallel computing platform. , 2012, Medical physics.
[23] J. Fessler,et al. Modelling the physics in the iterative reconstruction for transmission computed tomography , 2013, Physics in medicine and biology.
[24] R. K. Swank. Absorption and noise in x‐ray phosphors , 1973 .
[25] Ingrid Reiser,et al. Comparison of power spectra for tomosynthesis projections and reconstructed images. , 2009, Medical physics.
[26] Avinash C. Kak,et al. Principles of computerized tomographic imaging , 2001, Classics in applied mathematics.
[27] Huaxia Zhao,et al. Fast ray-tracing technique to calculate line integral paths in voxel arrays , 2003, 2003 IEEE Nuclear Science Symposium. Conference Record (IEEE Cat. No.03CH37515).
[28] Olle Seger,et al. The MATLAB/C program take - a program for simulation of X-ray projections from 3D volume data. Demonstration of beam-hardening artefacts in subsequent CT reconstruction. , 2005 .
[29] Masaki Katsura,et al. Model-based iterative reconstruction technique for radiation dose reduction in chest CT: comparison with the adaptive statistical iterative reconstruction technique , 2012, European Radiology.
[30] Srinivasan Vedantham,et al. Dedicated breast CT: fibroglandular volume measurements in a diagnostic population. , 2012, Medical physics.
[31] Manuel Dierick,et al. A realistic projection simulator for laboratory based X-ray micro-CT , 2014 .
[32] Srinivasan Vedantham,et al. Dedicated breast CT: geometric design considerations to maximize posterior breast coverage , 2013, Physics in medicine and biology.
[33] Wojciech Zbijewski,et al. Comparison of methods for suppressing edge and aliasing artefacts in iterative x-ray CT reconstruction , 2006, Physics in medicine and biology.
[34] T. R. Fewell,et al. Molybdenum, rhodium, and tungsten anode spectral models using interpolating polynomials with application to mammography. , 1997, Medical physics.
[35] T. J. Hebert,et al. Numerical evaluation of methods for computing tomographic projections , 1994 .
[36] Martin J. Yaffe,et al. Biomechanical 3-D finite element modeling of the human breast using MRI data , 2001, IEEE Transactions on Medical Imaging.
[37] T. M. Peters. Algorithms for Fast Back- and Re-Projection in Computed Tomography , 1981 .
[38] Ian A. Cunningham,et al. Numerical generation of digital mammograms considering imaging characteristics of an imager , 2011 .