Abstract
Quantitative dual-energy computed tomography may improve the accuracy of treatment planning in radiation therapy. Of special interest are algorithms that can estimate material composition of the imaged object. One example of such an algorithm is the 2D model-based iterative reconstruction algorithm DIRA. The aim of this work is to extend this algorithm to 3D so that it can be used with cone-beams and helical scanning. In the new algorithm, the parallel FBP method was replaced with the approximate 3D FBP-based PI-method. Its performance was tested using a mathematical phantom consisting of six ellipsoids. The algorithm substantially reduced the beam-hardening artefact and the artefacts caused by approximate reconstruction after six iterations. Compared to Alvarez-Macovski's base material decomposition, DIRA-3D does not require geometrically consistent projections and hence can be used in dual-source CT scanners. Also, it can use several tissue-specific material bases at the same time to represent the imaged object.
Author supplied keywords
Cite
CITATION STYLE
Magnusson, M., Björnfot, M., Tedgren, A. C., Carlsson, G. A., Sandborg, M., & Malusek, A. (2019). DIRA-3D - A model-based iterative algorithm for accurate dual-energy dual-source 3D helical CT. Biomedical Physics and Engineering Express, 5(6). https://doi.org/10.1088/2057-1976/ab42ee
Register to see more suggestions
Mendeley helps you to discover research relevant for your work.