GIFT
Group ICA/IVA software (MATLAB)
Table of Contents
Introduction
GIFT is an application supported by the NIH under grant 1RO1EB000840 to Dr. Vince Calhoun and Dr. Tulay Adali. It is a MATLAB toolbox which implements multiple algorithms for independent component analysis and blind source separation of group (and single subject) functional magnetic resonance imaging data. GIFT works on MATLAB R2008a and higher. Many ICA algorithms were generously contributedby Dr. Andrzej Cichocki. These are also available in Dr. Cichocki's ICALAB toolbox. For any question or comments please contact Vince Calhoun (vcalhoun@gsu.edu) or Cyrus Eierud (ceierud@gsu.edu).
Please note that all the toolboxes in GIFT require only MATLAB and not dependent on additional MATLAB toolboxes like Image Processing, Signal Processing, etc. Basic GIFT analysis (without GUI) runs on MATLAB R13 and higher. GIFT GUI works on R2008a and higher.
Downloads
GroupICAT v4.0c - Download by clicking the green code button on the upper right on this page and then clone the software using the link and the git clone command in your terminal. Current version of Group ICA. Requires MATLAB R2008a and higher.
Stand Alone Versions
Windows 64 - Compiled on Windows 64 bit OS and MATLAB R2020a. Please see read me text file for more details.
Linux-x86-64 - Compiled on Linux-x86-64 bit OS and MATLAB R2016b. Please see read me text file for more details.
fMRI Data - Example fMRI datais from a visuomotor paradigm.
Mancovan Sample Data - Sample data to use in mancovan analysis or temporal dfnc analysis.\
Complex GIFT - ICA is applied on complex fMRI data. Please follow the read me text file instructions for doing complex fMRI ICA analysis.\
GIFT BIDS-Apps
If you have your data in BIDS format or you want to run GIFT under a cluster you may want to our GIFT BIDS-Apps gift-bids.
Screen Shots
Figure 1. Main menu of GIFT |
Toolboxes
Mancovan
Mancovan toolbox is based on the paper (E. Allen, E. Erhardt, E. Damaraju, W. Gruner, J. Segall, R. Silva, M. Havlicek, S. Rachakonda, J. Fries, R.Kalyanam, A. Michael, J. Turner, T. Eichele, S. Adelsheim, A. Bryan, J. R. Bustillo, V. P. Clark, S. Feldstein,F. M. Filbey, C. Ford, et al, 2011). This toolbox works on MATLAB versions greater than R2008a. Features used are subject component spatial maps, timecourses spectra and FNC correlations. Multivariate tests are done on the features to determine the significant covariates which are later used in the univariate tests on each feature. To invoke the toolbox, select “Mancovan” under “Toolboxes” menu (Figure 3.2). You could also invoke toolbox using mancovan_toolbox at the command prompt. Mancovan toolbox (Figure 3.38) is divided into four parts like create design matrix, setup features, run mancova and display.
N-BiC
NBiC toolbox is based on the 2020 publication "N-BiC: A Method for Multi-Component and Symptom Biclustering of Structural MRI Data: Application to Schizophrenia" (Md Abdur Rahaman , Jessica A. Turner, Cota Navin Gupta, Srinivas Rachakonda, Jiayu Chen , Jingyu Liu , Theo G. M. van Erp, Steven Potkin, Judith Ford, Daniel Mathalon, Hyo Jong Lee, Wenhao Jiang, Bryon A. Mueller, Ole Andreassen, Ingrid Agartz, Scott R. Sponheim , Andrew R. Mayer, Julia Stephen , Rex E. Jung, Jose Canive, Juan Bustillo, and Vince D. Calhoun). This toolbox works on MATLAB versions greater than R2008a. Click here for more info.
Version History
IcaTbVersion: 4.0.3.5. More information about about the GIFT version history is found at the following link: GIFT version history
Cite As
Calhoun, V. D., et al. “A Method for Making Group Inferences Using Independent Component Analysis of Functional MRI Data: Exploring the Visual System.” NeuroImage, 2001, pp. S88.
Du, Yuhui, et al. “NeuroMark: An Automated and Adaptive ICA Based Pipeline to Identify Reproducible FMRI Markers of Brain Disorders.” NeuroImage: Clinical, vol. 28, Elsevier BV, 2020, p. 102375, doi:10.1016/j.nicl.2020.102375.
MATLAB Release Compatibility
Platform Compatibility
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- Sciences > Neuroscience > Human Brain Mapping > MRI >
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GroupICATv4.0c/icatb
GroupICATv4.0c/icatb/@gifti
GroupICATv4.0c/icatb/@gifti/private
GroupICATv4.0c/icatb/icatb_analysis_functions
GroupICATv4.0c/icatb/icatb_analysis_functions/icatb_algorithms
GroupICATv4.0c/icatb/icatb_analysis_functions/icatb_algorithms/icatb_semiblindInfomax
GroupICATv4.0c/icatb/icatb_batch_files
GroupICATv4.0c/icatb/icatb_display_functions
GroupICATv4.0c/icatb/icatb_helpManual
GroupICATv4.0c/icatb/icatb_helper_functions
GroupICATv4.0c/icatb/icatb_io_data_functions
GroupICATv4.0c/icatb/icatb_mancovan_files
GroupICATv4.0c/icatb/icatb_parallel_files
GroupICATv4.0c/icatb/icatb_scripts
GroupICATv4.0c/icatb/icatb_spm_files
GroupICATv4.0c/icatb/icatb_spm_files/@icatb_file_array
GroupICATv4.0c/icatb/icatb_spm_files/@icatb_file_array/private
GroupICATv4.0c/icatb/icatb_spm_files/@icatb_nifti
GroupICATv4.0c/icatb/icatb_spm_files/@icatb_nifti/private
GroupICATv4.0c/icatb/icatb_talairach_scripts
GroupICATv4.0c/icatb/icatb_templates
GroupICATv4.0c/icatb/toolbox/Graphical_Lasso
GroupICATv4.0c/icatb/toolbox/dynamic_coherence
GroupICATv4.0c/icatb/toolbox/eegiftv1.0c
GroupICATv4.0c/icatb/toolbox/eegiftv1.0c/icatb_eeg_batch_files
GroupICATv4.0c/icatb/toolbox/eegiftv1.0c/icatb_eeg_files
GroupICATv4.0c/icatb/toolbox/eegiftv1.0c/icatb_eeglabv6.0b_files
GroupICATv4.0c/icatb/toolbox/export_fig
GroupICATv4.0c/icatb/toolbox/icasso122
GroupICATv4.0c/icatb/toolbox/mancovan
GroupICATv4.0c/icatb/toolbox/mi
GroupICATv4.0c/icatb/toolbox/nbic
GroupICATv4.0c/icatb/toolbox/noisecloud
GroupICATv4.0c/icatb/toolbox/noisecloud/3rdparty
GroupICATv4.0c/icatb/toolbox/noisecloud/3rdparty/glmnet_matlab
GroupICATv4.0c/icatb/toolbox/noisecloud/prep
GroupICATv4.0c/icatb/toolbox/noisecloud/prep/label-good-bad-gui
GroupICATv4.0c/icatb/toolbox/noisecloud/scripts
Version | Published | Release Notes | |
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4.0.3.5 | See release notes for this release on GitHub: https://github.com/trendscenter/gift/releases/tag/v4.0.3.5 |
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4.0.3.0 |