Ultra-high resolution flat-panel volume CT: fundamental principles, design architecture, and system characterization
Top Cited Papers
- 10 March 2006
- journal article
- research article
- Published by Springer Nature in European Radiology
- Vol. 16 (6), 1191-1205
- https://doi.org/10.1007/s00330-006-0156-y
Abstract
Digital flat-panel-based volume CT (VCT) represents a unique design capable of ultra-high spatial resolution, direct volumetric imaging, and dynamic CT scanning. This innovation, when fully developed, has the promise of opening a unique window on human anatomy and physiology. For example, the volumetric coverage offered by this technology enables us to observe the perfusion of an entire organ, such as the brain, liver, or kidney, tomographically (e.g., after a transplant or ischemic event). By virtue of its higher resolution, one can directly visualize the trabecular structure of bone. This paper describes the basic design architecture of VCT. Three key technical challenges, viz., scatter correction, dynamic range extension, and temporal resolution improvement, must be addressed for successful implementation of a VCT scanner. How these issues are solved in a VCT prototype and the modifications necessary to enable ultra-high resolution volumetric scanning are described. The fundamental principles of scatter correction and dose reduction are illustrated with the help of an actual prototype. The image quality metrics of this prototype are characterized and compared with a multi-detector CT (MDCT).Keywords
This publication has 13 references indexed in Scilit:
- Flat-Panel Volumetric Computed TomographyJournal of Computer Assisted Tomography, 2005
- High-Resolution Computed Tomography of Temporal BoneJournal of Computer Assisted Tomography, 2005
- High-Resolution Flat-Panel Volume-CT of Temporal Bone-Part 1Journal of Computer Assisted Tomography, 2005
- Design and evaluation of a prototype volume CT scannerPublished by SPIE-Intl Soc Optical Eng ,2005
- Evaluation of image quality and dose on a flat-panel CT-scannerPublished by SPIE-Intl Soc Optical Eng ,2005
- Performance of standard fluoroscopy antiscatter grids in flat-detector-based cone-beam CTPublished by SPIE-Intl Soc Optical Eng ,2004
- Multiple-gain-ranging readout method to extend the dynamic range of amorphous silicon flat-panel imagersPublished by SPIE-Intl Soc Optical Eng ,2004
- Radiation exposure in multi-slice versus single-slice spiral CT: results of a nationwide surveyEuropean Radiology, 2003
- Practical cone-beam algorithmJournal of the Optical Society of America A, 1984
- Three-dimensional Reconstruction from Radiographs and Electron Micrographs: Application of Convolutions instead of Fourier TransformsProceedings of the National Academy of Sciences, 1971