Literature DB >> 17222713

CORSICA: correction of structured noise in fMRI by automatic identification of ICA components.

Vincent Perlbarg1, Pierre Bellec, Jean-Luc Anton, Mélanie Pélégrini-Issac, Julien Doyon, Habib Benali.   

Abstract

When applied to functional magnetic resonance imaging (fMRI) data, spatial independent component analysis (sICA), a data-driven technique that addresses the blind source separation problem, seems able to extract components specifically related to physiological noise and brain movements. These components should be removed from the data to achieve structured noise reduction and improve any subsequent detection and analysis of signal fluctuations related to neural activity. We propose a new automatic method called CORSICA (CORrection of Structured noise using spatial Independent Component Analysis) to identify the components related to physiological noise, using prior information on the spatial localization of the main physiological fluctuations in fMRI data. As opposed to existing spectral priors, which may be subject to aliasing effects for long-TR data sets (typically acquired with TR >1 s), such spatial priors can be applied to fMRI data, regardless of the TR of the acquisitions. By comparing the proposed automatic selection to a manual selection performed visually by a human operator, we first show that CORSICA is able to identify the noise-related components for long-TR data with a high sensitivity and a specificity of 1. On short-TR data sets, we validate that the proposed method of noise reduction allows a substantial improvement of the signal-to-noise ratio evaluated at the cardiac and respiratory frequencies, even in the gray matter, while preserving the main fluctuations related to neural activity.

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Year:  2006        PMID: 17222713     DOI: 10.1016/j.mri.2006.09.042

Source DB:  PubMed          Journal:  Magn Reson Imaging        ISSN: 0730-725X            Impact factor:   2.546


  83 in total

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2.  Global and system-specific resting-state fMRI fluctuations are uncorrelated: principal component analysis reveals anti-correlated networks.

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Review 4.  Resting developments: a review of fMRI post-processing methodologies for spontaneous brain activity.

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5.  Detection of epileptic activity in fMRI without recording the EEG.

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7.  Automatic independent component labeling for artifact removal in fMRI.

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8.  Cardiorespiratory effects on default-mode network activity as measured with fMRI.

Authors:  Mariët van Buuren; Thomas E Gladwin; Bram B Zandbelt; Martijn van den Heuvel; Nick F Ramsey; René S Kahn; Matthijs Vink
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9.  Independent component analysis as a model-free approach for the detection of BOLD changes related to epileptic spikes: a simulation study.

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Journal:  Hum Brain Mapp       Date:  2009-07       Impact factor: 5.038

10.  A kernel machine-based fMRI physiological noise removal method.

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Journal:  Magn Reson Imaging       Date:  2013-10-19       Impact factor: 2.546

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