4.6 Article

Functional Connectivity Methods and Their Applications in fMRI Data

期刊

ENTROPY
卷 24, 期 3, 页码 -

出版社

MDPI
DOI: 10.3390/e24030390

关键词

fMRI; functional connectivity; brain network; Human Connectome Project; statistics

资金

  1. Natural Sciences and Engineering Research Council [RGPIN-2020-06941]

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This paper provides an overview of the most common methods for estimating and characterizing functional connectivity in fMRI data. It illustrates these methods with example data from the Human Connectome Project, providing insights on implementation details and result interpretations. The aim is to assist researchers new to the field of neuroimaging in estimating and characterizing brain circuitry.
The availability of powerful non-invasive neuroimaging techniques has given rise to various studies that aim to map the human brain. These studies focus on not only finding brain activation signatures but also on understanding the overall organization of functional communication in the brain network. Based on the principle that distinct brain regions are functionally connected and continuously share information with each other, various approaches to finding these functional networks have been proposed in the literature. In this paper, we present an overview of the most common methods to estimate and characterize functional connectivity in fMRI data. We illustrate these methodologies with resting-state functional MRI data from the Human Connectome Project, providing details of their implementation and insights on the interpretations of the results. We aim to guide researchers that are new to the field of neuroimaging by providing the necessary tools to estimate and characterize brain circuitry.

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