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Prior image constrained compressed sensing (PICCS): A method to accurately reconstruct dynamic CT images from highly undersampled projection data sets

Medical Physics · 2008 · Vol. 35(2) · pp. 660–663
Guang-Hong ChenJie TangShuai Leng

Abstract

When the number of projections does not satisfy the Shannon/Nyquist sampling requirement, streaking artifacts are inevitable in x-ray computed tomography (CT) images reconstructed using filtered backprojection algorithms. In this letter, the spatial-temporal correlations in dynamic CT imaging have been exploited to sparsify dynamic CT image sequences and the newly proposed compressed sensing (CS) reconstruction method is applied to reconstruct the target image sequences. A prior image reconstructed from the union of interleaved dynamical data sets is utilized to constrain the CS image reconstruction for the individual time frames. This method is referred to as prior image constrained compressed sensing (PICCS). In vivo experimental animal studies were conducted to validate the PICCS algorithm, and the results indicate that PICCS enables accurate reconstruction of dynamic CT images using about 20 view angles, which corresponds to an under-sampling factor of 32. This undersampling factor implies a potential radiation dose reduction by a factor of 32 in myocardial CT perfusion imaging.

Advanced MRI Techniques and ApplicationsMedical Imaging Techniques and ApplicationsSparse and Compressive Sensing TechniquesUndersamplingCompressed sensingIterative reconstructionArtificial intelligenceComputer scienceComputer visionProjection (relational algebra)Sampling (signal processing)Medical imagingNyquist–Shannon sampling theorem

MeSH terms

AlgorithmsAnimalsHeartMaleNumerical Analysis, Computer-AssistedRadiographic Image EnhancementRadiographic Image Interpretation, Computer-AssistedSensitivity and SpecificitySignal Processing, Computer-AssistedSwineTomography, X-Ray ComputedReproducibility of ResultsSample SizeData Compression
Citations
1,141
FWCI
28.44
field-weighted impact
References
13
Percentile
100%
vs. same field & year
Citations per year
References
Sparse MRI: The application of compressed sensing for rapid MR imaging
Magnetic Resonance in Medicine · 2007 · 6,856 citations
Compressed sensing
IEEE Transactions on Information Theory · 2006 · 22,859 citations
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