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Updated: Jun 1, 2026

Basics of Multivariate Analysis in Neuroimaging Data
Published on: July 24, 2010
Automated approaches for analysis of multimodal MRI acquisitions in a study of cognitive aging
Erlend Hodneland1, Martin Ystad, Judit Haasz
1Department of Biomedicine, University of Bergen, N-5009 Bergen, Norway.
Abstract:
In this work we describe an integrated and automated workflow for a comprehensive and robust analysis of multimodal MR images from a cohort of more than hundred subjects. Image examinations are done three years apart and consist of 3D high-resolution anatomical images, low resolution tensor-valued DTI recordings and 4D resting state fMRI time series. The integrated analysis of the data requires robust tools for segmentation, registration and fiber tracking, which we combine in an automated manner. Our automated workflow is strongly desired due to the large number of subjects. Especially, we introduce the use of histogram segmentation to processed fMRI data to obtain functionally important seed and target regions for fiber tracking between them. This enables analysis of individually important resting state networks. We also discuss various approaches for the assessment of white matter integrity parameters along tracts, and in particular we introduce the use of functional data analysis (FDA) for this task.
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