Literature DB >> 25361500

Regularization designs for uniform spatial resolution and noise properties in statistical image reconstruction for 3-D X-ray CT.

Jang Hwan Cho, Jeffrey A Fessler.   

Abstract

Statistical image reconstruction methods for X-ray computed tomography (CT) provide improved spatial resolution and noise properties over conventional filtered back-projection (FBP) reconstruction, along with other potential advantages such as reduced patient dose and artifacts. Conventional regularized image reconstruction leads to spatially variant spatial resolution and noise characteristics because of interactions between the system models and the regularization. Previous regularization design methods aiming to solve such issues mostly rely on circulant approximations of the Fisher information matrix that are very inaccurate for undersampled geometries like short-scan cone-beam CT. This paper extends the regularization method proposed in to 3-D cone-beam CT by introducing a hypothetical scanning geometry that helps address the sampling properties. The proposed regularization designs were compared with the original method in with both phantom simulation and clinical reconstruction in 3-D axial X-ray CT. The proposed regularization methods yield improved spatial resolution or noise uniformity in statistical image reconstruction for short-scan axial cone-beam CT.

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Mesh:

Year:  2014        PMID: 25361500      PMCID: PMC4315750          DOI: 10.1109/TMI.2014.2365179

Source DB:  PubMed          Journal:  IEEE Trans Med Imaging        ISSN: 0278-0062            Impact factor:   10.048


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  16 in total

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Review 5.  Regularization strategies in statistical image reconstruction of low-dose x-ray CT: A review.

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9.  Image Reconstruction: From Sparsity to Data-adaptive Methods and Machine Learning.

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10.  Volumetric CT with sparse detector arrays (and application to Si-strip photon counters).

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