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MRI denoising by nonlocal means on multi-GPU

Academic Article
Publication Date:
2016
abstract:
A critical issue in image restoration is noise removal, whose state-of-art algorithm, NonLocal Means, is highly demanding in terms of computational time. Aim of the present paper is to boost its performance by an efficient algorithm tailored to GPU hardware architectures. This algorithm adapts itself to several variants of the methodologies in terms of different strategies for estimating the involved filtering parameter, type of noise affecting data, multicomponent signals, spatial dimension of the images. Numerical experiments on brain Magnetic Resonance images are provided.
Iris type:
01.01 Articolo in rivista
Keywords:
MRI; GPU; NonLocal Means; Denoising
List of contributors:
Amato, Umberto; Alfano, Bruno; Granata, Donatella
Authors of the University:
AMATO UMBERTO
GRANATA DONATELLA
Handle:
https://iris.cnr.it/handle/20.500.14243/309595
Published in:
JOURNAL OF REAL-TIME IMAGE PROCESSING (INTERNET)
Journal
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URL

http://dx.doi.org/10.1007/s11554-016-0566-2
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