Literature DB >> 19346143

Probabilistic Identification and Estimation of Noise (PIESNO): a self-consistent approach and its applications in MRI.

Cheng Guan Koay1, Evren Ozarslan, Carlo Pierpaoli.   

Abstract

Data analysis in MRI usually entails a series of processing procedures. One of these procedures is noise assessment, which in the context of this work, includes both the identification of noise-only pixels and the estimation of noise variance (standard deviation). Although noise assessment is critical to many MRI processing techniques, the identification of noise-only pixels has received less attention than has the estimation of noise variance. The main objectives of this paper are, therefore, to demonstrate (a) that the identification of noise-only pixels has an important role to play in the analysis of MRI data, (b) that the identification of noise-only pixels and the estimation of noise variance can be combined into a coherent framework, and (c) that this framework can be made self-consistent. To this end, we propose a novel iterative approach to simultaneously identify noise-only pixels and estimate the noise standard deviation from these identified pixels in a commonly used data structure in MRI. Experimental and simulated data were used to investigate the feasibility, the accuracy and the stability of the proposed technique.

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Year:  2009        PMID: 19346143      PMCID: PMC2732005          DOI: 10.1016/j.jmr.2009.03.005

Source DB:  PubMed          Journal:  J Magn Reson        ISSN: 1090-7807            Impact factor:   2.229


  33 in total

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7.  Wavelet-based Rician noise removal for magnetic resonance imaging.

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  21 in total

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Authors:  Evren Özarslan; Timothy M Shepherd; Cheng Guan Koay; Stephen J Blackband; Peter J Basser
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8.  A signal transformational framework for breaking the noise floor and its applications in MRI.

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10.  Denoising diffusion-weighted magnitude MR images using rank and edge constraints.

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