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A Linear/Nonlinear Characterization of Resting State Brain Networks in fMRI Time Series

Overview of attention for article published in Brain Topography, September 2012
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Title
A Linear/Nonlinear Characterization of Resting State Brain Networks in fMRI Time Series
Published in
Brain Topography, September 2012
DOI 10.1007/s10548-012-0249-7
Pubmed ID
Authors

Eren Gultepe, Bin He

Abstract

Resting state functional connectivity studies in fMRI have been used to demonstrate that the human brain is organized into inherent functional networks in the absence of stimuli. The basis for this activity is based on the spontaneous fluctuations observed during rest. In the present study, the time series generated from these fluctuations were characterized as either being linear or nonlinear based on the Delay Vector Variance method, applied through an examination of the local predictability of the signal. It was found that the default mode resting state network is composed of relatively more linear signals compared to the visual, task positive visuospatial, motor, and auditory resting state network time series. Also, it was shown that the visual cortex resting state network is more nonlinear relative to these aforementioned networks. Furthermore, using a histogram map of the nonlinearly characterized voxels for all the subjects, the histogram map was able to retrieve the peak intensity in four out of six resting state networks. Thus, the findings may provide the basis for a novel way to explore spontaneous fluctuations in the resting state brain.

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Mendeley readers

Mendeley readers

The data shown below were compiled from readership statistics for 49 Mendeley readers of this research output. Click here to see the associated Mendeley record.

Geographical breakdown

Country Count As %
Italy 1 2%
Finland 1 2%
United Kingdom 1 2%
Canada 1 2%
China 1 2%
Japan 1 2%
United States 1 2%
Unknown 42 86%

Demographic breakdown

Readers by professional status Count As %
Researcher 11 22%
Student > Ph. D. Student 10 20%
Student > Master 8 16%
Professor > Associate Professor 4 8%
Other 3 6%
Other 7 14%
Unknown 6 12%
Readers by discipline Count As %
Medicine and Dentistry 10 20%
Psychology 8 16%
Agricultural and Biological Sciences 4 8%
Neuroscience 4 8%
Engineering 4 8%
Other 7 14%
Unknown 12 24%
Attention Score in Context

Attention Score in Context

This research output has an Altmetric Attention Score of 1. This is our high-level measure of the quality and quantity of online attention that it has received. This Attention Score, as well as the ranking and number of research outputs shown below, was calculated when the research output was last mentioned on 04 September 2012.
All research outputs
#20,972,772
of 25,759,158 outputs
Outputs from Brain Topography
#400
of 530 outputs
Outputs of similar age
#148,975
of 189,316 outputs
Outputs of similar age from Brain Topography
#9
of 12 outputs
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