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  4. MP-PCA denoising for diffusion MRS data: promises and pitfalls
 
research article

MP-PCA denoising for diffusion MRS data: promises and pitfalls

Mosso, Jessie  
•
Simicic, Dunja  
•
Simsek, Kadir
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November 1, 2022
Neuroimage

Diffusion-weighted (DW) magnetic resonance spectroscopy (MRS) suffers from a lower signal to noise ratio (SNR) compared to conventional MRS owing to the addition of diffusion attenuation. This technique can therefore strongly benefit from noise reduction strategies. In the present work, Marchenko-Pastur principal component analysis (MP-PCA) denoising is tested on Monte Carlo simulations and on in vivo DW-MRS data acquired at 9.4 T in rat brain and at 3 T in human brain. We provide a descriptive study of the effects observed following different MP-PCA denoising strategies (denoising the entire matrix versus using a sliding window), in terms of apparent SNR, rank selection, noise correlation within and across b-values and quantification of metabolite concentrations and fitted diffusion coefficients. MP-PCA denoising yielded an increased apparent SNR, a more accurate B 0 drift correction between shots, and similar estimates of metabolite concentrations and diffusivities compared to the raw data. No spectral residuals on individual shots were observed but correlations in the noise level across shells were introduced, an effect which was mitigated using a sliding window, but which should be carefully considered.

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Type
research article
DOI
10.1016/j.neuroimage.2022.119634
Web of Science ID

WOS:000888073800002

Author(s)
Mosso, Jessie  
Simicic, Dunja  
Simsek, Kadir
Kreis, Roland
Cudalbu, Cristina  
Jelescu, Ileana O.
Date Issued

2022-11-01

Publisher

ACADEMIC PRESS INC ELSEVIER SCIENCE

Published in
Neuroimage
Volume

263

Article Number

119634

Subjects

Neurosciences

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Neuroimaging

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Radiology, Nuclear Medicine & Medical Imaging

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Neurosciences & Neurology

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Radiology, Nuclear Medicine & Medical Imaging

•

marchenko-pastur

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pca

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diffusion-weighted mrs

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denoising

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brain

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magnetic-resonance-spectroscopy

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principal-component analysis

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nmr spectral quantitation

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human-brain

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rat-brain

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apodization

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LIFMET  
CIBM  
Available on Infoscience
December 5, 2022
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/193038
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