Literature DB >> 26221718

Joint 6D k-q Space Compressed Sensing for Accelerated High Angular Resolution Diffusion MRI.

Jian Cheng, Dinggang Shen, Peter J Basser, Pew-Thian Yap.   

Abstract

High Angular Resolution Diffusion Imaging (HARDI) avoids the Gaussian. diffusion assumption that is inherent in Diffusion Tensor Imaging (DTI), and is capable of characterizing complex white matter micro-structure with greater precision. However, HARDI methods such as Diffusion Spectrum Imaging (DSI) typically require significantly more signal measurements than DTI, resulting in prohibitively long scanning times. One of the goals in HARDI research is therefore to improve estimation of quantities such as the Ensemble Average Propagator (EAP) and the Orientation Distribution Function (ODF) with a limited number of diffusion-weighted measurements. A popular approach to this problem, Compressed Sensing (CS), affords highly accurate signal reconstruction using significantly fewer (sub-Nyquist) data points than required traditionally. Existing approaches to CS diffusion MRI (CS-dMRI) mainly focus on applying CS in the q-space of diffusion signal measurements and fail to take into consideration information redundancy in the k-space. In this paper, we propose a framework, called 6-Dimensional Compressed Sensing diffusion MRI (6D-CS-dMRI), for reconstruction of the diffusion signal and the EAP from data sub-sampled in both 3D k-space and 3D q-space. To our knowledge, 6D-CS-dMRI is the first work that applies compressed sensing in the full 6D k-q space and reconstructs the diffusion signal in the full continuous q-space and the EAP in continuous displacement space. Experimental results on synthetic and real data demonstrate that, compared with full DSI sampling in k-q space, 6D-CS-dMRI yields excellent diffusion signal and EAP reconstruction with low root-mean-square error (RMSE) using 11 times less samples (3-fold reduction in k-space and 3.7-fold reduction in q-space).

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Year:  2015        PMID: 26221718      PMCID: PMC8136616          DOI: 10.1007/978-3-319-19992-4_62

Source DB:  PubMed          Journal:  Inf Process Med Imaging        ISSN: 1011-2499


  8 in total

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5.  Sparse MRI: The application of compressed sensing for rapid MR imaging.

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6.  Efficient and robust computation of PDF features from diffusion MR signal.

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7.  Regularized spherical polar fourier diffusion MRI with optimal dictionary learning.

Authors:  Jian Cheng; Tianzi Jiang; Rachid Deriche; Dinggang Shen; Pew-Thian Yap
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8.  Accelerated diffusion spectrum imaging with compressed sensing using adaptive dictionaries.

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  8 in total
  6 in total

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Review 3.  Sparse Reconstruction Techniques in Magnetic Resonance Imaging: Methods, Applications, and Challenges to Clinical Adoption.

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5.  Resolution and b value dependent structural connectome in ex vivo mouse brain.

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6.  Angular Upsampling in Infant Diffusion MRI Using Neighborhood Matching in x-q Space.

Authors:  Geng Chen; Bin Dong; Yong Zhang; Weili Lin; Dinggang Shen; Pew-Thian Yap
Journal:  Front Neuroinform       Date:  2018-09-07       Impact factor: 4.081

  6 in total

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