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Dual- and Multi-Energy CT: Principles, Technical Approaches, and Clinical Applications

Radiology · 2015 · Vol. 276(3) · pp. 637–653
Cynthia H. McColloughShuai LengLifeng YuJoel G. Fletcher

Abstract

In x-ray computed tomography (CT), materials having different elemental compositions can be represented by identical pixel values on a CT image (ie, CT numbers), depending on the mass density of the material. Thus, the differentiation and classification of different tissue types and contrast agents can be extremely challenging. In dual-energy CT, an additional attenuation measurement is obtained with a second x-ray spectrum (ie, a second "energy"), allowing the differentiation of multiple materials. Alternatively, this allows quantification of the mass density of two or three materials in a mixture with known elemental composition. Recent advances in the use of energy-resolving, photon-counting detectors for CT imaging suggest the ability to acquire data in multiple energy bins, which is expected to further improve the signal-to-noise ratio for material-specific imaging. In this review, the underlying motivation and physical principles of dual- or multi-energy CT are reviewed and each of the current technical approaches is described. In addition, current and evolving clinical applications are introduced.

Advanced X-ray and CT ImagingRadiation Dose and ImagingMedical Imaging Techniques and ApplicationsMedicineDual energyDetectorAttenuationEnergy (signal processing)Hounsfield scaleTomographyComputed tomographyPixelNoise (video)
Citations
1,501
FWCI
49.90
field-weighted impact
References
96
Percentile
100%
vs. same field & year
Citations per year
References
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European Radiology · 2006 · 343 citations
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American Journal of Roentgenology · 2012 · 595 citations
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European Radiology · 2005 · 1,402 citations
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