fmriprep

fMRIPrep is a robust and easy-to-use pipeline for preprocessing of diverse fMRI data. The transparent workflow dispenses of manual intervention, thereby ensuring the reproducibility of the results.

https://github.com/nipreps/fmriprep

Science Score: 49.0%

This score indicates how likely this project is to be science-related based on various indicators:

  • CITATION.cff file
  • codemeta.json file
    Found codemeta.json file
  • .zenodo.json file
    Found .zenodo.json file
  • DOI references
    Found 14 DOI reference(s) in README
  • Academic publication links
  • Committers with academic emails
    24 of 76 committers (31.6%) from academic institutions
  • Institutional organization owner
  • JOSS paper metadata
  • Scientific vocabulary similarity
    Low similarity (15.4%) to scientific vocabulary

Keywords

bids brain-imaging fmri fmri-preprocessing image-processing neuroimaging

Keywords from Contributors

closember data-storage git-annex usable eeg neuroscience meg magnetoencephalography electroencephalography electrocorticography
Last synced: 6 months ago · JSON representation

Repository

fMRIPrep is a robust and easy-to-use pipeline for preprocessing of diverse fMRI data. The transparent workflow dispenses of manual intervention, thereby ensuring the reproducibility of the results.

Basic Info
  • Host: GitHub
  • Owner: nipreps
  • License: apache-2.0
  • Language: HTML
  • Default Branch: master
  • Homepage: https://fmriprep.org
  • Size: 152 MB
Statistics
  • Stars: 687
  • Watchers: 27
  • Forks: 307
  • Open Issues: 327
  • Releases: 0
Topics
bids brain-imaging fmri fmri-preprocessing image-processing neuroimaging
Created almost 10 years ago · Last pushed 6 months ago
Metadata Files
Readme Changelog Contributing License Code of conduct Governance Zenodo

README.rst

*fMRIPrep*: A Robust Preprocessing Pipeline for fMRI Data
=========================================================
*fMRIPrep* is a *NiPreps (NeuroImaging PREProcessing toolS)* application
(`www.nipreps.org `__) for the preprocessing of
task-based and resting-state functional MRI (fMRI).

.. image:: https://img.shields.io/badge/RRID-SCR__016216-blue.svg
  :target: https://doi.org/10.1038/s41592-018-0235-4
  :alt: RRID:SCR_016216

.. image:: https://img.shields.io/pypi/v/fmriprep.svg
  :target: https://pypi.python.org/pypi/fmriprep/
  :alt: Latest Version

.. image:: https://circleci.com/gh/nipreps/fmriprep/tree/master.svg?style=shield
  :target: https://circleci.com/gh/nipreps/fmriprep/tree/master

.. image:: https://readthedocs.org/projects/fmriprep/badge/?version=latest
  :target: https://fmriprep.org/en/latest/?badge=latest
  :alt: Documentation Status

.. image:: https://img.shields.io/badge/doi-10.1038%2Fs41592--018--0235--4-blue.svg
  :target: https://doi.org/10.1038/s41592-018-0235-4
  :alt: Published in Nature Methods

.. image:: https://img.shields.io/badge/docker-nipreps/fmriprep-brightgreen.svg?logo=docker&style=flat
  :target: https://hub.docker.com/r/nipreps/fmriprep/tags/
  :alt: Docker image available!

.. image:: https://codeocean.com/codeocean-assets/badge/open-in-code-ocean.svg
  :target: https://doi.org/10.24433/CO.ed5ddfef-76a3-4996-b298-e3200f69141b
  :alt: Available in CodeOcean!

.. image:: https://chanzuckerberg.github.io/open-science/badges/CZI-EOSS.svg
  :target: https://czi.co/EOSS
  :alt: CZI's Essential Open Source Software for Science

About
-----
.. image:: https://github.com/oesteban/fmriprep/raw/f4c7a9804be26c912b24ef4dccba54bdd72fa1fd/docs/_static/fmriprep-21.0.0.svg


*fMRIPrep* is a functional magnetic resonance imaging (fMRI) data
preprocessing pipeline that is designed to provide an easily accessible,
state-of-the-art interface that is robust to variations in scan acquisition
protocols and that requires minimal user input, while providing easily
interpretable and comprehensive error and output reporting.
It performs basic processing steps (coregistration, normalization, unwarping,
noise component extraction, segmentation, skull-stripping, etc.) providing
outputs that can be easily submitted to a variety of group level analyses,
including task-based or resting-state fMRI, graph theory measures, and surface
or volume-based statistics.

.. note::

   *fMRIPrep* performs minimal preprocessing.
   Here we define 'minimal preprocessing'  as motion correction, field
   unwarping, normalization, bias field correction, and brain extraction.
   See the `workflows section of our documentation
   `__ for more details.

The *fMRIPrep* pipeline uses a combination of tools from well-known software
packages, including FSL_, ANTs_, FreeSurfer_ and AFNI_.
This pipeline was designed to provide the best software implementation for each
state of preprocessing, and will be updated as newer and better neuroimaging
software become available.

This tool allows you to easily do the following:

- Take fMRI data from raw to fully preprocessed form.
- Implement tools from different software packages.
- Achieve optimal data processing quality by using the best tools available.
- Generate preprocessing quality reports, with which the user can easily
  identify outliers.
- Receive verbose output concerning the stage of preprocessing for each
  subject, including meaningful errors.
- Automate and parallelize processing steps, which provides a significant
  speed-up from manual processing or shell-scripted pipelines.

More information and documentation can be found at
https://fmriprep.readthedocs.io/

Principles
----------
*fMRIPrep* is built around three principles:

1. **Robustness** - The pipeline adapts the preprocessing steps depending on
   the input dataset and should provide results as good as possible
   independently of scanner make, scanning parameters or presence of additional
   correction scans (such as fieldmaps).
2. **Ease of use** - Thanks to dependence on the BIDS standard, manual
   parameter input is reduced to a minimum, allowing the pipeline to run in an
   automatic fashion.
3. **"Glass box"** philosophy - Automation should not mean that one should not
   visually inspect the results or understand the methods.
   Thus, *fMRIPrep* provides visual reports for each subject, detailing the
   accuracy of the most important processing steps.
   This, combined with the documentation, can help researchers to understand
   the process and decide which subjects should be kept for the group level
   analysis.

Citation
--------
**Citation boilerplate**.
Please acknowledge this work using the citation boilerplate that *fMRIPrep* includes
in the visual report generated for every subject processed.
For a more detailed description of the citation boilerplate and its relevance,
please check out the
`NiPreps documentation `__.

**Plagiarism disclaimer**.
The boilerplate text is public domain, distributed under the
`CC0 license `__,
and we recommend *fMRIPrep* users to reproduce it verbatim in their works.
Therefore, if reviewers and/or editors raise concerns because the text is flagged by automated
plagiarism detection, please refer them to the *NiPreps* community and/or the note to this
effect in the `boilerplate documentation page `__.

**Papers**.
*fMRIPrep* contributors have published two relevant papers:
`Esteban et al. (2019) `__
[`preprint `__], and
`Esteban et al. (2020) `__
[`preprint `__].

**Other**.
Other materials that have been generated over time include the
`OHBM 2018 software demonstration `__
and some conference posters:

* Organization for Human Brain Mapping 2018
  (`Abstract `__;
  `PDF `__)

.. image:: _static/OHBM2018-poster_thumb.png
   :target: _static/OHBM2018-poster.png

* Organization for Human Brain Mapping 2017
  (`Abstract `__;
  `PDF `__)

.. image:: _static/OHBM2017-poster_thumb.png
   :target: _static/OHBM2017-poster.png

License information
-------------------
*fMRIPrep* adheres to the
`general licensing guidelines `__
of the *NiPreps framework*.

License
~~~~~~~
Copyright (c) the *NiPreps* Developers.

As of the 21.0.x pre-release and release series, *fMRIPrep* is
licensed under the Apache License, Version 2.0 (the "License");
you may not use this file except in compliance with the License.
You may obtain a copy of the License at
`http://www.apache.org/licenses/LICENSE-2.0
`__.

Unless required by applicable law or agreed to in writing, software
distributed under the License is distributed on an "AS IS" BASIS,
WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
See the License for the specific language governing permissions and
limitations under the License.

Acknowledgements
----------------
This work is steered and maintained by the `NiPreps Community `__.
This work was supported by the Laura and John Arnold Foundation,
the NIH (grant NBIB R01EB020740, PI: Ghosh),
and NIMH (R24MH114705, R24MH117179, R01MH121867, PI: Poldrack)

Owner

  • Name: NeuroImaging PREProcessing toolS
  • Login: nipreps
  • Kind: organization
  • Email: nipreps@gmail.com

GitHub Events

Total
  • Create event: 18
  • Release event: 7
  • Issues event: 75
  • Watch event: 51
  • Delete event: 14
  • Issue comment event: 265
  • Push event: 74
  • Pull request review comment event: 38
  • Pull request review event: 53
  • Pull request event: 94
  • Fork event: 13
Last Year
  • Create event: 18
  • Release event: 7
  • Issues event: 75
  • Watch event: 51
  • Delete event: 14
  • Issue comment event: 265
  • Push event: 74
  • Pull request review comment event: 38
  • Pull request review event: 53
  • Pull request event: 94
  • Fork event: 13

Committers

Last synced: about 2 years ago

All Time
  • Total Commits: 5,784
  • Total Committers: 76
  • Avg Commits per committer: 76.105
  • Development Distribution Score (DDS): 0.692
Past Year
  • Commits: 410
  • Committers: 19
  • Avg Commits per committer: 21.579
  • Development Distribution Score (DDS): 0.31
Top Committers
Name Email Commits
Oscar Esteban c****e@o****s 1,779
Christopher J. Markiewicz e****s@g****m 1,656
Krzysztof J. Gorgolewski k****i@g****m 542
Mathias Goncalves g****s@g****m 414
Ross Blair r****2@s****u 373
Shoshana Berleant b****t@s****u 270
James D. Kent j****t@u****u 125
Elizabeth DuPre e****2@c****u 111
Taylor Salo t****6@f****u 81
Rastko Ciric r****0@m****u 43
Basile Pinsard b****d@u****a 40
Céline Provins c****s@c****h 31
Anibal Sólon Heinsfeld a****n@g****m 22
Romain Valabregue r****e@u****r 19
Alejandro de la Vega a****4@g****m 19
Noah C. Benson n****n@n****u 19
Markus H. Sneve m****e@p****o 18
Franklin Feingold f****n@s****u 16
Dimitri Papadopoulos 3****s 13
Yaroslav Halchenko d****n@o****m 10
Asier Erramuzpe a****e@g****m 10
Jeff Mentch j****h@g****m 9
Nir Jacoby n****9@c****u 9
Craig Moodie c****e@s****u 8
Feilong Ma m****g@g****m 8
Karolina Finc k****c@g****m 8
bpinsard b****d@g****m 8
Lea Waller l****r@c****e 7
Daniel J. Lurie d****e@g****m 7
Ursula Tooley u****y@g****m 6
and 46 more...

Issues and Pull Requests

Last synced: 6 months ago

All Time
  • Total issues: 355
  • Total pull requests: 400
  • Average time to close issues: 9 months
  • Average time to close pull requests: 21 days
  • Total issue authors: 196
  • Total pull request authors: 23
  • Average comments per issue: 3.65
  • Average comments per pull request: 2.02
  • Merged pull requests: 274
  • Bot issues: 0
  • Bot pull requests: 53
Past Year
  • Issues: 67
  • Pull requests: 91
  • Average time to close issues: 7 days
  • Average time to close pull requests: 6 days
  • Issue authors: 46
  • Pull request authors: 11
  • Average comments per issue: 1.0
  • Average comments per pull request: 1.42
  • Merged pull requests: 59
  • Bot issues: 0
  • Bot pull requests: 16
Top Authors
Issue Authors
  • effigies (43)
  • tsalo (27)
  • oesteban (21)
  • celprov (7)
  • julfou81 (6)
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  • chrisgorgo (5)
  • bpinsard (5)
  • CogBrainHealthLab (4)
  • rciric (3)
  • cmpetty (3)
  • madisoth (3)
  • manzouri (3)
  • WangYunHong98 (3)
  • burdinskid13 (3)
Pull Request Authors
  • effigies (200)
  • dependabot[bot] (53)
  • tsalo (40)
  • DimitriPapadopoulos (35)
  • mgxd (16)
  • bpinsard (11)
  • celprov (10)
  • psadil (8)
  • oesteban (7)
  • jhlegarreta (3)
  • madisoth (2)
  • kjamison (2)
  • yarikoptic (2)
  • utooley (2)
  • AxelCouturierCIBM (1)
Top Labels
Issue Labels
bug (185) feature (23) documentation (19) question (16) me-epi (13) multiecho (12) confounds (11) impact: low (9) effort: low (8) CIFTI / Grayordinates (7) reports (7) effort: medium (7) help wanted (6) impact: high (6) impact: medium (5) next (5) sdc (5) potential hackathon project (4) derivatives (4) effort: high (4) templateflow (3) BIDS (3) fieldmaps (3) discussion (3) good first issue (2) faq (2) partial FOV (1) refactoring (1) group-level (1) needs-mre (1)
Pull Request Labels
dependencies (53) python (37) next (15) bug (11) github_actions (9) documentation (5) backport candidate (4) CIFTI / Grayordinates (4) feature (4) multiecho (4) refactoring (3) me-epi (3) derivatives (3) BIDS (2) templates (2) optimization (2) effort: low (1) impact: high (1) memory (1) heuristics (1)

Packages

  • Total packages: 2
  • Total downloads:
    • pypi 2,509 last-month
  • Total docker downloads: 90
  • Total dependent packages: 1
    (may contain duplicates)
  • Total dependent repositories: 20
    (may contain duplicates)
  • Total versions: 375
  • Total maintainers: 5
pypi.org: fmriprep

A robust and easy-to-use pipeline for preprocessing of diverse fMRI data

  • Homepage: https://github.com/nipreps/fmriprep
  • Documentation: https://fmriprep.org
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  • Latest release: 25.1.4
    published 7 months ago
  • Versions: 195
  • Dependent Packages: 0
  • Dependent Repositories: 11
  • Downloads: 1,287 Last month
  • Docker Downloads: 90
Rankings
Docker downloads count: 2.2%
Stargazers count: 2.7%
Forks count: 3.0%
Dependent repos count: 4.4%
Average: 4.6%
Dependent packages count: 7.3%
Downloads: 8.1%
Maintainers (5)
Last synced: 7 months ago
pypi.org: fmriprep-docker

A wrapper for generating Docker commands using regular fMRIPrep syntax

  • Homepage: https://github.com/nipreps/fmriprep
  • Documentation: https://fmriprep.org
  • License: Copyright (c) the Nipreps developers. All rights reserved. Redistribution and use in source and binary forms, with or without modification, are permitted provided that the following conditions are met: * Redistributions of source code must retain the above copyright notice, this list of conditions and the following disclaimer. * Redistributions in binary form must reproduce the above copyright notice, this list of conditions and the following disclaimer in the documentation and/or other materials provided with the distribution. * Neither the name of fmriprep nor the names of its contributors may be used to endorse or promote products derived from this software without specific prior written permission. THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT HOLDER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
  • Latest release: 25.1.4
    published 7 months ago
  • Versions: 180
  • Dependent Packages: 1
  • Dependent Repositories: 9
  • Downloads: 1,222 Last month
Rankings
Stargazers count: 2.7%
Forks count: 3.0%
Dependent repos count: 4.9%
Average: 5.3%
Dependent packages count: 7.3%
Downloads: 8.5%
Maintainers (5)
Last synced: 7 months ago

Dependencies

docs/requirements.txt pypi
  • sphinxcontrib-napoleon 0dc3f28a309ad602be5f44a9049785a1026451b3
.github/workflows/contrib.yml actions
  • actions/checkout v3 composite
  • actions/setup-python v4 composite
.github/workflows/pre-release.yml actions
  • actions/checkout v3 composite
  • actions/setup-python v4 composite
  • codecov/codecov-action v1 composite
.github/workflows/stable.yml actions
  • actions/checkout v3 composite
  • actions/setup-python v4 composite
  • codecov/codecov-action v1 composite
Dockerfile docker
  • python slim build
  • ubuntu jammy-20221130 build
pyproject.toml pypi
  • APScheduler *
  • codecarbon *
  • importlib_resources python_version < "3.9"
  • looseversion *
  • nibabel >= 4.0.1
  • nipype >= 1.8.5
  • nitime *
  • nitransforms >= 21.0.0
  • niworkflows ~= 1.7.0
  • numpy *
  • packaging *
  • pandas *
  • psutil >= 5.4
  • pybids >= 0.15.2
  • requests *
  • sdcflows ~= 2.2.2
  • smriprep @ git+https://github.com/nipreps/smriprep.git@master
  • tedana ~= 0.0.9
  • templateflow >= 23.0.0
  • toml *
.maint/requirements.txt pypi
  • click *
  • fuzzywuzzy *
requirements.txt pypi
  • 117 dependencies
wrapper/pyproject.toml pypi