Comments (6)
It's very fundamental to sklearn input/output. If we input pandas and output numpy, would be worse than API inconsistency.
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Can you explain this a little more?
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Ya, like we discussed ... if input was pandas, we should save labels (names) in self and then when return results (like errors or other output that user wants) we should put back the labels and return pandas. That is, numpy in numpy out, but pandas in pandas out.
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👍 to this but is it really necessary for 0.0.4?
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The solution X (should be coef_ for sklearn) should have column names. This is especially important because add a column when doing fit_intercept=True. Predictions should be named as such if pandas. And like we talked a while back, errors should have column names.
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scikit-learn/scikit-learn#5523
Ok, looks like long-term issue that we aren't going to solve. But pandas mostly goes in, and numpy always comes out right now.
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