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Sep
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answered parallel generation of random forests using scikit-learn
Sep
18
comment parallel generation of random forests using scikit-learn
Agree with @DrDom, there are many ways to ensemble models. Details on how you want to do it are pretty important.
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Jun
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comment Issue with GridSearchCV on a Pipeline
How were your training and test splits created? Is there a temporal element to the data?
May
25
answered How can I pass a preprocessor to TfidfVectorizer? - sklearn - python
May
4
comment When does fit() stop running in scikit?
The sci-kit documention also links directly the underlying liblinear documentation: csie.ntu.edu.tw/~cjlin/liblinear If there is any confusion on what is actually going on there, I would recommend shifting over cross-validated since the question will be more methodological than programming related.
May
4
comment LDA Topic Models package
I don't understand what you are asking, these are all parameters you can specify...
May
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comment When does fit() stop running in scikit?
tol: float, optional : Tolerance for stopping criteria.
May
3
comment Difference between classification and regression score in Python scikit learn
This question doesn't make any sense to me, there are many ways to evaluate both regression and classification problems. Do you want to know the difference between r-squared and f1? If so, reading the documentation and/or wikipedia should answer that for you. Regardless, I don't see how this is a programming question suited for stackoverflow so I'm downvoting.
Apr
19
answered return indicies of rows in a CountVectorizer that have non-zero entries for a particular feature in scikit learn
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