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I have a column in python pandas DataFrame that has boolean True/False values, but for further calculations I need 1/0 representation. Is there a quick pandas/numpy way to do that?

EDIT: The answers below do not seem to hold in the case of numpy that, given an array with both integers and True/False values, returns dtype=object on such array. In order to proceed with further calculations in numpy, I had to set explicitly np_values = np.array(df.values, dtype = np.float64).

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What further calculations are required? –  Jon Clements Jun 29 '13 at 17:58

2 Answers 2

up vote 3 down vote accepted

True is 1 in Python, and likewise False is 0*:

>>> True == 1
True
>>> False == 0
True

You should be able to perform any operations you want on them by just treating them as though they were numbers, as they are numbers:

>>> issubclass(bool, int)
True
>>> True * 5
5

So to answer your question, no work necessary - you already have what you are looking for.

* Note I use is as an English word, not the Python keyword is - True will not be the same object as any random 1.

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Great, didn't know about that, thank you! –  Simon Righley Jun 29 '13 at 18:05
    
Just be careful with data types if doing floating point math: np.sin(True).dtype is float16 for me. –  jorgeca Jun 29 '13 at 18:09

You also can do this directly on Frames

In [104]: df = DataFrame(dict(A = True, B = False),index=range(3))

In [105]: df
Out[105]: 
      A      B
0  True  False
1  True  False
2  True  False

In [106]: df.dtypes
Out[106]: 
A    bool
B    bool
dtype: object

In [107]: df.astype(int)
Out[107]: 
   A  B
0  1  0
1  1  0
2  1  0

In [108]: df.astype(int).dtypes
Out[108]: 
A    int64
B    int64
dtype: object
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