article Open AccessTop 1% cited
A deep convolutional neural network using directional wavelets for low‐dose X‐ray CT reconstruction
Medical Physics · 2017 · Vol. 44(10) · pp. e360–e375
Eunhee Kang(Bio-Medical Science (South Korea))Junhong Min(Bio-Medical Science (South Korea))Jong Chul Ye✉(Bio-Medical Science (South Korea))
Abstract
To the best of our knowledge, this work is the first deep-learning architecture for low-dose CT reconstruction which has been rigorously evaluated and proven to be effective. In addition, the proposed algorithm, in contrast to existing model-based iterative reconstruction (MBIR) methods, has considerable potential to benefit from large data sets. Therefore, we believe that the proposed algorithm opens a new direction in the area of low-dose CT research.
Advanced X-ray and CT ImagingMedical Imaging Techniques and ApplicationsRadiation Dose and ImagingIterative reconstructionConvolutional neural networkWaveletPattern recognition (psychology)Contrast (vision)Iterative methodMedical imaging
MeSH terms
HumansImage Processing, Computer-AssistedRadiation DosageTomography, X-Ray ComputedArtifactsNeural Networks, ComputerWavelet AnalysisSignal-To-Noise Ratio
Citations
691
FWCI
33.35
field-weighted impact
References
36
Percentile
100%
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Citations per year
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