Literature DB >> 22223929

Multi-energy CT based on a prior rank, intensity and sparsity model (PRISM).

Hao Gao1, Hengyong Yu, Stanley Osher, Ge Wang.   

Abstract

We propose a compressive sensing approach for multi-energy computed tomography (CT), namely the prior rank, intensity and sparsity model (PRISM). To further compress the multi-energy image for allowing the reconstruction with fewer CT data and less radiation dose, the PRISM models a multi-energy image as the superposition of a low-rank matrix and a sparse matrix (with row dimension in space and column dimension in energy), where the low-rank matrix corresponds to the stationary background over energy that has a low matrix rank, and the sparse matrix represents the rest of distinct spectral features that are often sparse. Distinct from previous methods, the PRISM utilizes the generalized rank, e.g., the matrix rank of tight-frame transform of a multi-energy image, which offers a way to characterize the multi-level and multi-filtered image coherence across the energy spectrum. Besides, the energy-dependent intensity information can be incorporated into the PRISM in terms of the spectral curves for base materials, with which the restoration of the multi-energy image becomes the reconstruction of the energy-independent material composition matrix. In other words, the PRISM utilizes prior knowledge on the generalized rank and sparsity of a multi-energy image, and intensity/spectral characteristics of base materials. Furthermore, we develop an accurate and fast split Bregman method for the PRISM and demonstrate the superior performance of the PRISM relative to several competing methods in simulations.

Entities:  

Year:  2011        PMID: 22223929      PMCID: PMC3249839          DOI: 10.1088/0266-5611/27/11/115012

Source DB:  PubMed          Journal:  Inverse Probl        ISSN: 0266-5611            Impact factor:   2.407


  17 in total

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  51 in total

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5.  Evaluation of an Analytic Reconstruction Method as a Platform for Spectral Cone-beam CT.

Authors:  Huihua Kong; Rui Liu; Jinxiao Pan; Hengyong Yu
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7.  Fast parallel algorithms for the x-ray transform and its adjoint.

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Journal:  Med Phys       Date:  2012-11       Impact factor: 4.071

8.  Sparsity-regularized image reconstruction of decomposed K-edge data in spectral CT.

Authors:  Qiaofeng Xu; Alex Sawatzky; Mark A Anastasio; Carsten O Schirra
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9.  A neural network-based method for spectral distortion correction in photon counting x-ray CT.

Authors:  Mengheng Touch; Darin P Clark; William Barber; Cristian T Badea
Journal:  Phys Med Biol       Date:  2016-07-29       Impact factor: 3.609

10.  Low-dose cerebral perfusion computed tomography image restoration via low-rank and total variation regularizations.

Authors:  Shanzhou Niu; Shanli Zhang; Jing Huang; Zhaoying Bian; Wufan Chen; Gaohang Yu; Zhengrong Liang; Jianhua Ma
Journal:  Neurocomputing       Date:  2016-03-28       Impact factor: 5.719

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