Literature DB >> 26863578

Blind Compressed Sensing Enables 3-Dimensional Dynamic Free Breathing Magnetic Resonance Imaging of Lung Volumes and Diaphragm Motion.

Sampada Bhave1, Sajan Goud Lingala, John D Newell, Scott K Nagle, Mathews Jacob.   

Abstract

OBJECTIVES: The objective of this study was to increase the spatial and temporal resolution of dynamic 3-dimensional (3D) magnetic resonance imaging (MRI) of lung volumes and diaphragm motion. To achieve this goal, we evaluate the utility of the proposed blind compressed sensing (BCS) algorithm to recover data from highly undersampled measurements.
MATERIALS AND METHODS: We evaluated the performance of the BCS scheme to recover dynamic data sets from retrospectively and prospectively undersampled measurements. We also compared its performance against that of view-sharing, the nuclear norm minimization scheme, and the l1 Fourier sparsity regularization scheme. Quantitative experiments were performed on a healthy subject using a fully sampled 2D data set with uniform radial sampling, which was retrospectively undersampled with 16 radial spokes per frame to correspond to an undersampling factor of 8. The images obtained from the 4 reconstruction schemes were compared with the fully sampled data using mean square error and normalized high-frequency error metrics. The schemes were also compared using prospective 3D data acquired on a Siemens 3 T TIM TRIO MRI scanner on 8 healthy subjects during free breathing. Two expert cardiothoracic radiologists (R1 and R2) qualitatively evaluated the reconstructed 3D data sets using a 5-point scale (0-4) on the basis of spatial resolution, temporal resolution, and presence of aliasing artifacts.
RESULTS: The BCS scheme gives better reconstructions (mean square error = 0.0232 and normalized high frequency = 0.133) than the other schemes in the 2D retrospective undersampling experiments, producing minimally distorted reconstructions up to an acceleration factor of 8 (16 radial spokes per frame). The prospective 3D experiments show that the BCS scheme provides visually improved reconstructions than the other schemes do. The BCS scheme provides improved qualitative scores over nuclear norm and l1 Fourier sparsity regularization schemes in the temporal blurring and spatial blurring categories. The qualitative scores for aliasing artifacts in the images reconstructed by nuclear norm scheme and BCS scheme are comparable.The comparisons of the tidal volume changes also show that the BCS scheme has less temporal blurring as compared with the nuclear norm minimization scheme and the l1 Fourier sparsity regularization scheme. The minute ventilation estimated by BCS for tidal breathing in supine position (4 L/min) and the measured supine inspiratory capacity (1.5 L) is in good correlation with the literature. The improved performance of BCS can be explained by its ability to efficiently adapt to the data, thus providing a richer representation of the signal.
CONCLUSION: The feasibility of the BCS scheme was demonstrated for dynamic 3D free breathing MRI of lung volumes and diaphragm motion. A temporal resolution of ∼500 milliseconds, spatial resolution of 2.7 × 2.7 × 10 mm, with whole lung coverage (16 slices) was achieved using the BCS scheme.

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Year:  2016        PMID: 26863578      PMCID: PMC7877557          DOI: 10.1097/RLI.0000000000000253

Source DB:  PubMed          Journal:  Invest Radiol        ISSN: 0020-9996            Impact factor:   6.016


  28 in total

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2.  Dynamic echo-planar MR imaging of the diaphragm for a 3D dynamic analysis.

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Authors:  D S Gierada; J J Curtin; S J Erickson; R W Prost; J A Strandt; L R Goodman
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7.  Accelerated dynamic MRI exploiting sparsity and low-rank structure: k-t SLR.

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Journal:  IEEE Trans Med Imaging       Date:  2011-01-31       Impact factor: 10.048

8.  Diaphragm strength in chronic obstructive pulmonary disease.

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9.  Three-dimensional reconstruction of the in vivo human diaphragm shape at different lung volumes.

Authors:  A P Gauthier; S Verbanck; M Estenne; C Segebarth; P T Macklem; M Paiva
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10.  Lung motion and volume measurement by dynamic 3D MRI using a 128-channel receiver coil.

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Journal:  Pediatr Radiol       Date:  2019-08-28

2.  Motion robust high resolution 3D free-breathing pulmonary MRI using dynamic 3D image self-navigator.

Authors:  Wenwen Jiang; Frank Ong; Kevin M Johnson; Scott K Nagle; Thomas A Hope; Michael Lustig; Peder E Z Larson
Journal:  Magn Reson Med       Date:  2017-10-11       Impact factor: 4.668

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