27

Say I have a dataframe

import pandas as pd
import numpy as np
foo = pd.DataFrame(np.random.random((10,5)))

and I create another dataframe from a subset of my data:

bar = foo.iloc[3:5,1:4]

does bar hold a copy of those elements from foo? Is there any way to create a view of that data instead? If so, what would happen if I try to modify data in this view? Does Pandas provide any sort of copy-on-write mechanism?

1
  • so when I do bar.loc[:, ['a', 'b']] it returns a copy, but when I do bar.loc[:, 'a'] it returns a view?
    – Lisa
    Jul 11, 2017 at 23:27

1 Answer 1

39

Your answer lies in the pandas docs: returning-a-view-versus-a-copy.

Whenever an array of labels or a boolean vector are involved in the indexing operation, the result will be a copy. With single label / scalar indexing and slicing, e.g. df.ix[3:6] or df.ix[:, 'A'], a view will be returned.

In your example, bar is a view of slices of foo. If you wanted a copy, you could have used the copy method. Modifying bar also modifies foo. pandas does not appear to have a copy-on-write mechanism.

See my code example below to illustrate:

In [1]: import pandas as pd
   ...: import numpy as np
   ...: foo = pd.DataFrame(np.random.random((10,5)))
   ...: 

In [2]: pd.__version__
Out[2]: '0.12.0.dev-35312e4'

In [3]: np.__version__
Out[3]: '1.7.1'

In [4]: # DataFrame has copy method
   ...: foo_copy = foo.copy()

In [5]: bar = foo.iloc[3:5,1:4]

In [6]: bar == foo.iloc[3:5,1:4] == foo_copy.iloc[3:5,1:4]
Out[6]: 
      1     2     3
3  True  True  True
4  True  True  True

In [7]: # Changing the view
   ...: bar.ix[3,1] = 5

In [8]: # View and DataFrame still equal
   ...: bar == foo.iloc[3:5,1:4]
Out[8]: 
      1     2     3
3  True  True  True
4  True  True  True

In [9]: # It is now different from a copy of original
   ...: bar == foo_copy.iloc[3:5,1:4]
Out[9]: 
       1     2     3
3  False  True  True
4   True  True  True
6
  • 1
    so when I do bar.loc[:, ['a', 'b']] it returns a copy, but when I do bar.loc[:, 'a'] it returns a view?
    – Lisa
    Jul 11, 2017 at 23:26
  • 2
    The bar.loc[:, 'a'] acts like a slice, which returns a view, vs bar.loc[:, ['a', 'b']], which uses list indexing which returns a copy. Note that bar.loc[:, ['a']] would also return a copy.
    – davidshinn
    Jul 11, 2017 at 23:55
  • 1
    how about bar['a']? is it a view or a copy?
    – Lisa
    Jul 12, 2017 at 0:27
  • 1
    @davidshinn Is the highlighted quote still in the docs you linked? I can't find it! Oct 24, 2017 at 9:04
  • 3
    It has been revised since the original response (the quote is in version 0.13): pandas.pydata.org/pandas-docs/version/0.13/…
    – davidshinn
    Oct 30, 2017 at 21:17

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