Works in Magnetic Resonance in Medicine, 2020, Vol 84, Issue 5
Results: 50
RARE two‐point Dixon with dual bandwidths.
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- Magnetic Resonance in Medicine, 2020, v. 84, n. 5, p. C1, doi. 10.1002/mrm.28293
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- Article
RARE two‐point Dixon with dual bandwidths.
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- Magnetic Resonance in Medicine, 2020, v. 84, n. 5, p. C1, doi. 10.1002/mrm.28293
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- Article
SIFT in pathological connectomes: Follow‐up response to Smith and colleagues.
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- Magnetic Resonance in Medicine, 2020, v. 84, n. 5, p. 2308, doi. 10.1002/mrm.28412
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Graft assessment of the ex vivo perfused porcine kidney using hyperpolarized [1‐<sup>13</sup>C]pyruvate.
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- Magnetic Resonance in Medicine, 2020, v. 84, n. 5, p. 2645, doi. 10.1002/mrm.28363
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Non‐water‐excitation MR spectroscopy techniques to explore exchanging protons in human brain at 3 T.
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- Magnetic Resonance in Medicine, 2020, v. 84, n. 5, p. 2352, doi. 10.1002/mrm.28322
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Fast and accurate calculation of myocardial T<sub>1</sub> and T<sub>2</sub> values using deep learning Bloch equation simulations (DeepBLESS).
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- Magnetic Resonance in Medicine, 2020, v. 84, n. 5, p. 2831, doi. 10.1002/mrm.28321
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Modeling of active shimming of metallic needles for interventional MRI.
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- Magnetic Resonance in Medicine, 2020, v. 84, n. 5, p. 2858, doi. 10.1002/mrm.28320
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Genetic algorithm search for the worst‐case MRI RF exposure for a multiconfiguration implantable fixation system modeled using artificial neural networks.
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- Magnetic Resonance in Medicine, 2020, v. 84, n. 5, p. 2754, doi. 10.1002/mrm.28319
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Analysis and correction of off‐resonance artifacts in echo‐planar cardiac diffusion tensor imaging.
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- Magnetic Resonance in Medicine, 2020, v. 84, n. 5, p. 2561, doi. 10.1002/mrm.28318
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Convincing evidence for magic angle less‐sensitive quantitative T<sub>1ρ</sub> imaging of articular cartilage using the 3D ultrashort echo time cones adiabatic T<sub>1ρ</sub> (3D UTE cones‐AdiabT<sub>1ρ</sub>) sequence.
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- Magnetic Resonance in Medicine, 2020, v. 84, n. 5, p. 2551, doi. 10.1002/mrm.28317
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Sodium relaxometry using <sup>23</sup>Na MR fingerprinting: A proof of concept.
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- Magnetic Resonance in Medicine, 2020, v. 84, n. 5, p. 2577, doi. 10.1002/mrm.28316
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Modified acquisition strategy for reduced motion artifact in super resolution T2 FSE multislice MRI: Application to prostate.
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- Magnetic Resonance in Medicine, 2020, v. 84, n. 5, p. 2537, doi. 10.1002/mrm.28315
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Supporting measurements or more averages? How to quantify cerebral blood flow most reliably in 5 minutes by arterial spin labeling.
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- Magnetic Resonance in Medicine, 2020, v. 84, n. 5, p. 2523, doi. 10.1002/mrm.28314
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Investigating the origin of pH‐sensitive magnetization transfer ratio asymmetry MRI contrast during the acute stroke: Correction of T<sub>1</sub> change reveals the dominant amide proton transfer MRI signal.
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- Magnetic Resonance in Medicine, 2020, v. 84, n. 5, p. 2702, doi. 10.1002/mrm.28313
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Two‐dimensional UTE overview imaging for dental application.
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- Magnetic Resonance in Medicine, 2020, v. 84, n. 5, p. 2616, doi. 10.1002/mrm.28312
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Multi‐parametric liver tissue characterization using MR fingerprinting: Simultaneous T<sub>1</sub>, T<sub>2</sub>, T<sub>2</sub>*, and fat fraction mapping.
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- Magnetic Resonance in Medicine, 2020, v. 84, n. 5, p. 2625, doi. 10.1002/mrm.28311
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Improved velocity‐selective‐inversion arterial spin labeling for cerebral blood flow mapping with 3D acquisition.
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- Magnetic Resonance in Medicine, 2020, v. 84, n. 5, p. 2512, doi. 10.1002/mrm.28310
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Fast T<sub>2</sub> mapping using multi‐echo spin‐echo MRI: A linear order approach.
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- Magnetic Resonance in Medicine, 2020, v. 84, n. 5, p. 2815, doi. 10.1002/mrm.28309
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MR fingerprinting for rapid simultaneous T<sub>1</sub>, T<sub>2</sub>, and T<sub>1</sub><sub>ρ</sub> relaxation mapping of the human articular cartilage at 3T.
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- Magnetic Resonance in Medicine, 2020, v. 84, n. 5, p. 2636, doi. 10.1002/mrm.28308
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B<sub>1</sub> inhomogeneity correction of RARE MRI with transceive surface radiofrequency probes.
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- Magnetic Resonance in Medicine, 2020, v. 84, n. 5, p. 2684, doi. 10.1002/mrm.28307
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Quantitative measurement of redox state in human brain by <sup>31</sup>P MRS at 7T with spectral simplification and inclusion of multiple nucleotide sugar components in data analysis.
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- Magnetic Resonance in Medicine, 2020, v. 84, n. 5, p. 2338, doi. 10.1002/mrm.28306
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Numerical approximation to the general kinetic model for ASL quantification.
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- Magnetic Resonance in Medicine, 2020, v. 84, n. 5, p. 2846, doi. 10.1002/mrm.28304
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Microscopic susceptibility anisotropy imaging.
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- Magnetic Resonance in Medicine, 2020, v. 84, n. 5, p. 2739, doi. 10.1002/mrm.28303
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Correction of motion‐induced susceptibility artifacts and B<sub>0</sub> drift during proton resonance frequency shift‐based MR thermometry in the pelvis with background field removal methods.
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- Magnetic Resonance in Medicine, 2020, v. 84, n. 5, p. 2495, doi. 10.1002/mrm.28302
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Retrospective rigid motion correction of three‐dimensional magnetic resonance fingerprinting of the human brain.
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- Magnetic Resonance in Medicine, 2020, v. 84, n. 5, p. 2606, doi. 10.1002/mrm.28301
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In vivo comparison of MRI‐based and MRS‐based quantification of adipose tissue fatty acid composition against gas chromatography.
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- Magnetic Resonance in Medicine, 2020, v. 84, n. 5, p. 2484, doi. 10.1002/mrm.28300
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Mapping hepatocyte size in vivo using temporal diffusion spectroscopy MRI.
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- Magnetic Resonance in Medicine, 2020, v. 84, n. 5, p. 2671, doi. 10.1002/mrm.28299
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Whole brain snapshot CEST at 3T using 3D‐EPI: Aiming for speed, volume, and homogeneity.
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- Magnetic Resonance in Medicine, 2020, v. 84, n. 5, p. 2469, doi. 10.1002/mrm.28298
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Introduction of the snake antenna array: Geometry optimization of a sinusoidal dipole antenna for 10.5T body imaging with lower peak SAR.
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- Magnetic Resonance in Medicine, 2020, v. 84, n. 5, p. 2885, doi. 10.1002/mrm.28297
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Pixel‐wise assessment of cardiovascular magnetic resonance first‐pass perfusion using a cardiac phantom mimicking transmural myocardial perfusion gradients.
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- Magnetic Resonance in Medicine, 2020, v. 84, n. 5, p. 2871, doi. 10.1002/mrm.28296
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Echo planar time‐resolved imaging with subspace reconstruction and optimized spatiotemporal encoding.
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- Magnetic Resonance in Medicine, 2020, v. 84, n. 5, p. 2442, doi. 10.1002/mrm.28295
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Automating in vivo cardiac diffusion tensor postprocessing with deep learning–based segmentation.
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- Magnetic Resonance in Medicine, 2020, v. 84, n. 5, p. 2801, doi. 10.1002/mrm.28294
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RARE two‐point Dixon with dual bandwidths.
- Published in:
- Magnetic Resonance in Medicine, 2020, v. 84, n. 5, p. 2456, doi. 10.1002/mrm.28293
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- Publication type:
- Article
Automated detection of left ventricle in arterial input function images for inline perfusion mapping using deep learning: A study of 15,000 patients.
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- Magnetic Resonance in Medicine, 2020, v. 84, n. 5, p. 2788, doi. 10.1002/mrm.28291
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T<sub>2</sub> relaxation‐time mapping in healthy and diseased skeletal muscle using extended phase graph algorithms.
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- Magnetic Resonance in Medicine, 2020, v. 84, n. 5, p. 2656, doi. 10.1002/mrm.28290
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Autocalibrated cardiac tissue phase mapping with multiband imaging and k‐t acceleration.
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- Magnetic Resonance in Medicine, 2020, v. 84, n. 5, p. 2429, doi. 10.1002/mrm.28288
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Motion correction in magnetic resonance spectroscopy.
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- Magnetic Resonance in Medicine, 2020, v. 84, n. 5, p. 2312, doi. 10.1002/mrm.28287
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Estimating pentose phosphate pathway activity from the analysis of hepatic glycogen <sup>13</sup>C‐isotopomers derived from [U‐<sup>13</sup>C]fructose and [U‐<sup>13</sup>C]glucose.
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- Magnetic Resonance in Medicine, 2020, v. 84, n. 5, p. 2765, doi. 10.1002/mrm.28286
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Deep learning‐based reconstruction of in vivo pelvis conductivity with a 3D patch‐based convolutional neural network trained on simulated MR data.
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- Magnetic Resonance in Medicine, 2020, v. 84, n. 5, p. 2772, doi. 10.1002/mrm.28285
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Efficient <sup>23</sup>Na triple‐quantum signal imaging on clinical scanners: Cartesian imaging of single and triple‐quantum <sup>23</sup>Na (CRISTINA).
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- Magnetic Resonance in Medicine, 2020, v. 84, n. 5, p. 2412, doi. 10.1002/mrm.28284
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Three‐dimensional motion‐corrected T<sub>1</sub> relaxometry with MPnRAGE.
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- Magnetic Resonance in Medicine, 2020, v. 84, n. 5, p. 2400, doi. 10.1002/mrm.28283
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Concentration and effective T<sub>2</sub> relaxation times of macromolecules at 3T.
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- Magnetic Resonance in Medicine, 2020, v. 84, n. 5, p. 2327, doi. 10.1002/mrm.28282
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In vitro characterization of the serotonin biosynthesis pathway by CEST MRI.
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- Magnetic Resonance in Medicine, 2020, v. 84, n. 5, p. 2389, doi. 10.1002/mrm.28281
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Free‐breathing fat and R<sub>2</sub>* quantification in the liver using a stack‐of‐stars multi‐echo acquisition with respiratory‐resolved model‐based reconstruction.
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- Magnetic Resonance in Medicine, 2020, v. 84, n. 5, p. 2592, doi. 10.1002/mrm.28280
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Efficient spiral in‐out and EPI balanced steady‐state free precession cine imaging using a high‐performance 0.55T MRI.
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- Magnetic Resonance in Medicine, 2020, v. 84, n. 5, p. 2364, doi. 10.1002/mrm.28278
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Origin of orientation‐dependent R<sub>1</sub> (=1/T<sub>1</sub>) relaxation in white matter.
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- Magnetic Resonance in Medicine, 2020, v. 84, n. 5, p. 2713, doi. 10.1002/mrm.28277
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Specific absorption rate implications of within‐scan patient head motion for ultra‐high field MRI.
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- Magnetic Resonance in Medicine, 2020, v. 84, n. 5, p. 2724, doi. 10.1002/mrm.28276
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Magnetic resonance multitasking for multidimensional assessment of cardiovascular system: Development and feasibility study on the thoracic aorta.
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- Magnetic Resonance in Medicine, 2020, v. 84, n. 5, p. 2376, doi. 10.1002/mrm.28275
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Notes on "A cautionary note on the use of SIFT in pathological connectomes".
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- Magnetic Resonance in Medicine, 2020, v. 84, n. 5, p. 2303, doi. 10.1002/mrm.28266
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Issue Information.
- Published in:
- Magnetic Resonance in Medicine, 2020, v. 84, n. 5, p. 2291, doi. 10.1002/mrm.27847
- Publication type:
- Article