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Diffusion Weighted Image Denoising Using Overcomplete Local PCA
by
Manjón, José V.
, Robles, Montserrat
, Concha, Luis
, Collins, D. Louis
, Coupé, Pierrick
, Buades, Antonio
in
Bioengineering
/ Brain - physiology
/ Comparative analysis
/ Computer Science
/ Decomposition
/ Diffusion
/ Diffusion parameters
/ Driving while intoxicated
/ Engineering Sciences
/ Humans
/ Life Sciences
/ Linear algebra
/ Magnetic Resonance Imaging
/ Medical Imaging
/ Methods
/ Neurosciences
/ NMR
/ Noise
/ Noise measurement
/ Noise reduction
/ Nuclear magnetic resonance
/ Parameter estimation
/ Principal Component Analysis
/ Principal components analysis
/ Random noise
/ Signal and Image processing
/ Signal to noise ratio
2013
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Diffusion Weighted Image Denoising Using Overcomplete Local PCA
by
Manjón, José V.
, Robles, Montserrat
, Concha, Luis
, Collins, D. Louis
, Coupé, Pierrick
, Buades, Antonio
in
Bioengineering
/ Brain - physiology
/ Comparative analysis
/ Computer Science
/ Decomposition
/ Diffusion
/ Diffusion parameters
/ Driving while intoxicated
/ Engineering Sciences
/ Humans
/ Life Sciences
/ Linear algebra
/ Magnetic Resonance Imaging
/ Medical Imaging
/ Methods
/ Neurosciences
/ NMR
/ Noise
/ Noise measurement
/ Noise reduction
/ Nuclear magnetic resonance
/ Parameter estimation
/ Principal Component Analysis
/ Principal components analysis
/ Random noise
/ Signal and Image processing
/ Signal to noise ratio
2013
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Do you wish to request the book?
Diffusion Weighted Image Denoising Using Overcomplete Local PCA
by
Manjón, José V.
, Robles, Montserrat
, Concha, Luis
, Collins, D. Louis
, Coupé, Pierrick
, Buades, Antonio
in
Bioengineering
/ Brain - physiology
/ Comparative analysis
/ Computer Science
/ Decomposition
/ Diffusion
/ Diffusion parameters
/ Driving while intoxicated
/ Engineering Sciences
/ Humans
/ Life Sciences
/ Linear algebra
/ Magnetic Resonance Imaging
/ Medical Imaging
/ Methods
/ Neurosciences
/ NMR
/ Noise
/ Noise measurement
/ Noise reduction
/ Nuclear magnetic resonance
/ Parameter estimation
/ Principal Component Analysis
/ Principal components analysis
/ Random noise
/ Signal and Image processing
/ Signal to noise ratio
2013
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Diffusion Weighted Image Denoising Using Overcomplete Local PCA
Journal Article
Diffusion Weighted Image Denoising Using Overcomplete Local PCA
2013
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Overview
Diffusion Weighted Images (DWI) normally shows a low Signal to Noise Ratio (SNR) due to the presence of noise from the measurement process that complicates and biases the estimation of quantitative diffusion parameters. In this paper, a new denoising methodology is proposed that takes into consideration the multicomponent nature of multi-directional DWI datasets such as those employed in diffusion imaging. This new filter reduces random noise in multicomponent DWI by locally shrinking less significant Principal Components using an overcomplete approach. The proposed method is compared with state-of-the-art methods using synthetic and real clinical MR images, showing improved performance in terms of denoising quality and estimation of diffusion parameters.
Publisher
Public Library of Science,Public Library of Science (PLoS)
Subject
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