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Low-Dose X-ray CT Reconstruction via Dictionary Learning

IEEE Transactions on Medical Imaging · 2012 · Vol. 31(9) · pp. 1682–1697
Qiong XuHengyong YuXuanqin MouLei ZhangJiang HsiehGe Wang

Abstract

Although diagnostic medical imaging provides enormous benefits in the early detection and accuracy diagnosis of various diseases, there are growing concerns on the potential side effect of radiation induced genetic, cancerous and other diseases. How to reduce radiation dose while maintaining the diagnostic performance is a major challenge in the computed tomography (CT) field. Inspired by the compressive sensing theory, the sparse constraint in terms of total variation (TV) minimization has already led to promising results for low-dose CT reconstruction. Compared to the discrete gradient transform used in the TV method, dictionary learning is proven to be an effective way for sparse representation. On the other hand, it is important to consider the statistical property of projection data in the low-dose CT case. Recently, we have developed a dictionary learning based approach for low-dose X-ray CT. In this paper, we present this method in detail and evaluate it in experiments. In our method, the sparse constraint in terms of a redundant dictionary is incorporated into an objective function in a statistical iterative reconstruction framework. The dictionary can be either predetermined before an image reconstruction task or adaptively defined during the reconstruction process. An alternating minimization scheme is developed to minimize the objective function. Our approach is evaluated with low-dose X-ray projections collected in animal and human CT studies, and the improvement associated with dictionary learning is quantified relative to filtered backprojection and TV-based reconstructions. The results show that the proposed approach might produce better images with lower noise and more detailed structural features in our selected cases. However, there is no proof that this is true for all kinds of structures.

Medical Imaging Techniques and ApplicationsAdvanced MRI Techniques and ApplicationsAdvanced X-ray and CT ImagingIterative reconstructionComputer scienceArtificial intelligenceCompressed sensingSparse approximationMedical imagingProjection (relational algebra)Pattern recognition (psychology)Constraint (computer-aided design)Computer vision

MeSH terms

AlgorithmsAnimalsArtificial IntelligenceComputer SimulationHumansImage Processing, Computer-AssistedLungSheepRadiography, ThoracicTomography, X-Ray ComputedPhantoms, Imaging

Funding

  • Wake Forest University
Citations
679
FWCI
19.70
field-weighted impact
References
50
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100%
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References
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Sparse Representation for Color Image Restoration
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American Journal of Roentgenology · 2001 · 3,219 citations
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