Literature DB >> 27875338

An Image-Domain Contrast Material Extraction Method for Dual-Energy Computed Tomography.

Jack W Lambert1, Yuxin Sun, Robert G Gould, Michael A Ohliger, Zhixi Li, Benjamin M Yeh.   

Abstract

OBJECTIVES: Conventional material decomposition techniques for dual-energy computed tomography (CT) assume mass or volume conservation, where the CT number of each voxel is fully assigned to predefined materials. We present an image-domain contrast material extraction process (CMEP) method that preferentially extracts contrast-producing materials while leaving the remaining image intact.
MATERIALS AND METHODS: Image processing freeware (Fiji) is used to perform consecutive arithmetic operations on a dual-energy ratio map to generate masks, which are then applied to the original images to generate material-specific images. First, a low-energy image is divided by a high-energy image to generate a ratio map. The ratio map is then split into material-specific masks. Ratio intervals known to correspond to particular materials (eg, iodine, calcium) are assigned a multiplier of 1, whereas ratio values in between these intervals are assigned linear gradients from 0 to 1. The masks are then multiplied by an original CT image to produce material-specific images. The method was tested quantitatively at dual-source CT and rapid kVp-switching CT (RSCT) with phantoms using pure and mixed formulations of tungsten, calcium, and iodine. Errors were evaluated by comparing the known material concentrations with those derived from the CMEP material-specific images. Further qualitative evaluation was performed in vivo at RSCT with a rabbit model using identical CMEP parameters to the phantom. Orally administered tungsten, vascularly administered iodine, and skeletal calcium were used as the 3 contrast materials.
RESULTS: All 5 material combinations-tungsten, iodine, and calcium, and mixtures of tungsten-calcium and iodine-calcium-showed distinct dual-energy ratios, largely independent of material concentration at both dual-source CT and RSCT. The CMEP was successful in both phantoms and in vivo. For pure contrast materials in the phantom, the maximum error between the known and CMEP-derived material concentrations was 0.9 mg/mL, 24.9 mg/mL, and 0.4 mg/mL for iodine, calcium, and tungsten respectively. Mixtures of iodine and calcium showed the highest discrepancies, which reflected the sensitivity of iodine to the image-type chosen for the extraction of the final material-specific image. The rabbit model was able to clearly show the 3 extracted material phases, vascular iodine, oral tungsten, and skeletal calcium. Some skeletal calcium was misassigned to the extracted iodine image; however, this did not impede the depiction of the vasculature.
CONCLUSIONS: The CMEP is a straightforward, image-domain approach to extract material signal at dual-energy CT. It has particular value for separation of experimental high-Z contrast elements from conventional iodine contrast or calcium, even when the exact attenuation coefficient profiles of desired contrast materials may be unknown. The CMEP is readily implemented in the image-domain within freeware, and can be adapted for use with images from multiple vendors.

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Year:  2017        PMID: 27875338      PMCID: PMC5339044          DOI: 10.1097/RLI.0000000000000335

Source DB:  PubMed          Journal:  Invest Radiol        ISSN: 0020-9996            Impact factor:   6.016


  32 in total

1.  Quantitative imaging of element composition and mass fraction using dual-energy CT: three-material decomposition.

Authors:  Xin Liu; Lifeng Yu; Andrew N Primak; Cynthia H McCollough
Journal:  Med Phys       Date:  2009-05       Impact factor: 4.071

2.  Coronary artery calcium quantification from contrast enhanced CT using gemstone spectral imaging and material decomposition.

Authors:  Tobias A Fuchs; Julia Stehli; Svetlana Dougoud; Bert-Ram Sah; Sacha Bull; Olivier F Clerc; Mathias Possner; Ronny R Buechel; Oliver Gaemperli; Philipp A Kaufmann
Journal:  Int J Cardiovasc Imaging       Date:  2014-07-04       Impact factor: 2.357

3.  Iterative image-domain decomposition for dual-energy CT.

Authors:  Tianye Niu; Xue Dong; Michael Petrongolo; Lei Zhu
Journal:  Med Phys       Date:  2014-04       Impact factor: 4.071

4.  Iodine quantification using dual-energy multidetector computed tomography imaging: phantom study assessing the impact of iterative reconstruction schemes and patient habitus on accuracy.

Authors:  Sebastian Feuerlein; Tobias J Heye; Mustafa R Bashir; Daniel T Boll
Journal:  Invest Radiol       Date:  2012-11       Impact factor: 6.016

5.  Maximizing Iodine Contrast-to-Noise Ratios in Abdominal CT Imaging through Use of Energy Domain Noise Reduction and Virtual Monoenergetic Dual-Energy CT.

Authors:  Shuai Leng; Lifeng Yu; Joel G Fletcher; Cynthia H McCollough
Journal:  Radiology       Date:  2015-04-10       Impact factor: 11.105

6.  In vivo comparison of tantalum, tungsten, and bismuth enteric contrast agents to complement intravenous iodine for double-contrast dual-energy CT of the bowel.

Authors:  Samira Rathnayake; John Mongan; Andrew S Torres; Robert Colborn; Dong-Wei Gao; Benjamin M Yeh; Yanjun Fu
Journal:  Contrast Media Mol Imaging       Date:  2016-02-18       Impact factor: 3.161

7.  Multi-material decomposition using statistical image reconstruction for spectral CT.

Authors:  Yong Long; Jeffrey A Fessler
Journal:  IEEE Trans Med Imaging       Date:  2014-04-25       Impact factor: 10.048

Review 8.  Technical principles of dual source CT.

Authors:  Martin Petersilka; Herbert Bruder; Bernhard Krauss; Karl Stierstorfer; Thomas G Flohr
Journal:  Eur J Radiol       Date:  2008-10-07       Impact factor: 3.528

9.  High Atomic Number Contrast Media Offer Potential for Radiation Dose Reduction in Contrast-Enhanced Computed Tomography.

Authors:  Ann-Christin Roessler; Martin Hupfer; Daniel Kolditz; Gregor Jost; Hubertus Pietsch; Willi A Kalender
Journal:  Invest Radiol       Date:  2016-04       Impact factor: 6.016

10.  Cervical and cranial computed tomographic angiography with automated bone removal: dual energy computed tomography versus standard computed tomography.

Authors:  Dominik Morhard; Christian Fink; Anno Graser; Maximilian F Reiser; Christoph Becker; Thorsten R C Johnson
Journal:  Invest Radiol       Date:  2009-05       Impact factor: 6.016

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  6 in total

Review 1.  Lower extremity CT angiography in peripheral arterial disease: from the established approach to evolving technical developments.

Authors:  Omar Shwaiki; Basem Rashwan; Matthias A Fink; Levester Kirksey; Sameer Gadani; Karunakaravel Karuppasamy; Claudius Melzig; Dustin Thompson; Giuseppe D'Amico; Fabian Rengier; Sasan Partovi
Journal:  Int J Cardiovasc Imaging       Date:  2021-05-17       Impact factor: 2.357

2.  Improved Calcium Scoring at Dual-Energy Computed Tomography Angiography Using a High-Z Contrast Element and Novel Material Separation Technique.

Authors:  Jack W Lambert; Yuxin Sun; Karen G Ordovas; Robert G Gould; Sizhe Wang; Benjamin M Yeh
Journal:  J Comput Assist Tomogr       Date:  2018 May/Jun       Impact factor: 1.826

3.  An Intravascular Tantalum Oxide-based CT Contrast Agent: Preclinical Evaluation Emulating Overweight and Obese Patient Size.

Authors:  Jack W Lambert; Yuxin Sun; Carol Stillson; Zhixi Li; Rahi Kumar; Sizhe Wang; Paul F FitzGerald; Peter J Bonitatibus; Robert E Colborn; Jeannette C Roberts; Peter M Edic; Michael Marino; Benjamin M Yeh
Journal:  Radiology       Date:  2018-07-03       Impact factor: 11.105

4.  Dual-energy CT imaging of nasopharyngeal cancer cells using multifunctional gold nanoparticles.

Authors:  Sara Khademi; Saeed Sarkar; Ali Shakeri-Zadeh; Neda Attaran; Sharmin Kharrazi; Razieh Solgi; Mohammad Reza Ay; Hosein Azimian; Hossein Ghadiri
Journal:  IET Nanobiotechnol       Date:  2019-12       Impact factor: 1.847

5.  Investigating the feasibility of generating dual-energy CT from one 120-kVp CT scan: a phantom study.

Authors:  Wen-Hui Huang; Kai-Jie Jhan; Ching-Ching Yang
Journal:  J Appl Clin Med Phys       Date:  2020-10-14       Impact factor: 2.102

6.  Image Decomposition Algorithm for Dual-Energy Computed Tomography via Fully Convolutional Network.

Authors:  Yifu Xu; Bin Yan; Jingfang Zhang; Jian Chen; Lei Zeng; Linyuang Wang
Journal:  Comput Math Methods Med       Date:  2018-09-05       Impact factor: 2.238

  6 in total

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