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I'm using sklearn.pipeline.Pipeline to chain a bunch of feature extractors and a classifier. Is there a way to combine multiple feature selection classes (for example the ones from sklearn.feature_selection.text) in parallel and join their output?

My code right now looks like:

pipeline = Pipeline([
    ('vect', CountVectorizer()),
    ('tfidf', TfidfTransformer()),
    ('clf', SGDClassifier()),
])

which results in:

vect -> tfidf -> clf

I want to be able to specify a pipeline which looks like:

vect1 -> tfidf1 \
                 -> clf
vect2 -> tfidf2 /
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1 Answer 1

up vote 10 down vote accepted

This has been implemented recently in the master branch of scikit-learn under the name FeatureUnion:

http://scikit-learn.org/dev/modules/pipeline.html#feature-union

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1  
Yup, I saw it at blog.kaggle.com/2012/09/26/impermium-andreas-blog after I asked the question –  Daniel Velkov Oct 4 '12 at 19:04
    
Cool, a first user :) Let me know if you find it useful! –  Andreas Mueller Oct 5 '12 at 10:29
1  
sklearn.pipeline.FeatureUnion is in version 0.13.1 –  smci Jul 2 '13 at 4:22

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