Literature DB >> 24881498

Statistical image reconstruction for low-dose CT using nonlocal means-based regularization.

Hao Zhang1, Jianhua Ma2, Jing Wang3, Yan Liu4, Hongbing Lu5, Zhengrong Liang6.   

Abstract

Low-dose computed tomography (CT) imaging without sacrifice of clinical tasks is desirable due to the growing concerns about excessive radiation exposure to the patients. One common strategy to achieve low-dose CT imaging is to lower the milliampere-second (mAs) setting in data scanning protocol. However, the reconstructed CT images by the conventional filtered back-projection (FBP) method from the low-mAs acquisitions may be severely degraded due to the excessive noise. Statistical image reconstruction (SIR) methods have shown potentials to significantly improve the reconstructed image quality from the low-mAs acquisitions, wherein the regularization plays a critical role and an established family of regularizations is based on the Markov random field (MRF) model. Inspired by the success of nonlocal means (NLM) in image processing applications, in this work, we propose to explore the NLM-based regularization for SIR to reconstruct low-dose CT images from low-mAs acquisitions. Experimental results with both digital and physical phantoms consistently demonstrated that SIR with the NLM-based regularization can achieve more gains than SIR with the well-known Gaussian MRF regularization or the generalized Gaussian MRF regularization and the conventional FBP method, in terms of image noise reduction and resolution preservation.
Copyright © 2014 Elsevier Ltd. All rights reserved.

Entities:  

Keywords:  Low-dose CT; Nonlocal means; Regularization; Statistical image reconstruction

Mesh:

Year:  2014        PMID: 24881498      PMCID: PMC4152958          DOI: 10.1016/j.compmedimag.2014.05.002

Source DB:  PubMed          Journal:  Comput Med Imaging Graph        ISSN: 0895-6111            Impact factor:   4.790


  37 in total

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1.  Statistical image reconstruction for low-dose CT using nonlocal means-based regularization. Part II: An adaptive approach.

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Review 7.  Applications of nonlocal means algorithm in low-dose X-ray CT image processing and reconstruction: A review.

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8.  Assessment of prior image induced nonlocal means regularization for low-dose CT reconstruction: Change in anatomy.

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9.  Nonlocal low-rank and sparse matrix decomposition for spectral CT reconstruction.

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10.  MULTI-ENERGY CONE-BEAM CT RECONSTRUCTION WITH A SPATIAL SPECTRAL NONLOCAL MEANS ALGORITHM.

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  10 in total

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