Note
This page is a reference documentation. It only explains the function signature, and not how to use it. Please refer to the user guide for the big picture.
nilearn.datasets.fetch_atlas_msdl#
- nilearn.datasets.fetch_atlas_msdl(data_dir=None, url=None, resume=True, verbose=1)[source]#
Download and load the MSDL brain Probabilistic atlas.
It can be downloaded at [1], and cited using [2]. See also [3] for more information.
- Parameters:
- data_dir
pathlib.Path
orstr
, optional Path where data should be downloaded. By default, files are downloaded in home directory.
- url
str
, default=None URL of file to download. Override download URL. Used for test only (or if you setup a mirror of the data).
- resume
bool
, default=True Whether to resume download of a partly-downloaded file.
- verbose
int
, default=1 Verbosity level (0 means no message).
- data_dir
- Returns:
- data
sklearn.utils.Bunch
Dictionary-like object, the interest attributes are :
‘maps’:
str
, path to nifti file containing the Probabilistic atlas image (shape is equal to(40, 48, 35, 39)
).‘labels’:
list
ofstr
, list containing the labels of the regions. There are 39 labels such thatdata.labels[i]
corresponds to mapi
.‘region_coords’:
list
of length-3tuple
,data.region_coords[i]
contains the coordinates(x, y, z)
of regioni
in MNI space.‘networks’:
list
ofstr
, list containing the names of the networks. There are 39 network names such thatdata.networks[i]
is the network name of regioni
.‘description’:
str
, description of the atlas.
- data
References
Examples using nilearn.datasets.fetch_atlas_msdl
#
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Visualizing a probabilistic atlas: the default mode in the MSDL atlas
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Computing a connectome with sparse inverse covariance
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Extracting signals of a probabilistic atlas of functional regions
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Group Sparse inverse covariance for multi-subject connectome
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Classification of age groups using functional connectivity