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volume_censoring : Using 1d_tool.py in AFNI, we censored high-motion TRs and their preceding TR if derivative values (TR relative to preceding TR) had a euclidean norm exceeding 1.2. We censored individual TRs as well if over 10% of within-mask voxels were intensity outliers in their respective time series.
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Softwares
softwares
: AFNI_19.0.23Input data
derivatives (fMRIprep)
Additional context
volume_censoring
: Using 1d_tool.py in AFNI, we censored high-motion TRs and their preceding TR if derivative values (TR relative to preceding TR) had a euclidean norm exceeding 1.2. We censored individual TRs as well if over 10% of within-mask voxels were intensity outliers in their respective time series.List of tasks
Please tick the boxes below once the corresponding task is finished. 👍
status: ready for dev
label to it.team_{team_id}.py
inside thenarps_open/pipelines/
directory. You can use a file insidenarps_open/pipelines/templates
as a template if needed.tests/pipelines/test_team_*
as examples.The text was updated successfully, but these errors were encountered: