Construct a FeatureUnion
from the given transformers.
This is a shorthand for the FeatureUnion
constructor; it does not require, and does not permit, naming the transformers. Instead, they will be given names automatically based on their types. It also does not allow weighting.
One or more estimators.
Number of jobs to run in parallel. None
means 1 unless in a joblib.parallel_backend
context. -1
means using all processors. See Glossary for more details.
Changed in version v0.20: n_jobs
default changed from 1 to None.
If True, the time elapsed while fitting each transformer will be printed as it is completed.
If True, the feature names generated by get_feature_names_out
will include prefixes derived from the transformer names.
A FeatureUnion
object for concatenating the results of multiple transformer objects.
See also
FeatureUnion
Class for concatenating the results of multiple transformer objects.
Examples
>>> from sklearn.decomposition import PCA, TruncatedSVD >>> from sklearn.pipeline import make_union >>> make_union(PCA(), TruncatedSVD()) FeatureUnion(transformer_list=[('pca', PCA()), ('truncatedsvd', TruncatedSVD())])
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