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I would like to subtract all rows in a dataframe with one row from another dataframe. (Difference from one row)

Is there an easy way to do this? (like df-df2 )

df = pd.DataFrame(abs(np.floor(np.random.rand(3, 5)*10)),
...                 columns=['a', 'b', 'c', 'd', 'e'])
df



Out[18]:
   a  b  c  d  e
0  8  9  8  6  4
1  3  0  6  4  8
2  2  5  7  5  6


df2 = pd.DataFrame(abs(np.floor(np.random.rand(1, 5)*10)),
...                 columns=['a', 'b', 'c', 'd', 'e'])
df2

   a  b  c  d  e
0  8  1  3  7  5

Here is an output that works for the first row, however I want the remaining rows to be detracted as well...

df-df2

    a   b   c   d   e
0   0   8   5  -1  -1
1 NaN NaN NaN NaN NaN
2 NaN NaN NaN NaN NaN
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3 Answers 3

up vote 6 down vote accepted

Pandas NDFrames generally try to perform operations on items with matching indices. df - df2 only performs subtraction on the first row, because the 0 indexed row is the only row with an index shared in common.

The operation you are looking for looks more like a NumPy array operation performed with "broadcasting":

In [21]: df.values-df2.values
Out[21]: 
array([[ 0,  8,  5, -1, -1],
       [-5, -1,  3, -3,  3],
       [-6,  4,  4, -2,  1]], dtype=int64)

To package the result in a DataFrame:

In [22]: pd.DataFrame(df.values-df2.values, columns=df.columns)
Out[22]: 
   a  b  c  d  e
0  0  8  5 -1 -1
1 -5 -1  3 -3  3
2 -6  4  4 -2  1
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Thank you, works perfect!! –  jonas Feb 28 '14 at 12:06

You can do this directly in pandas as well. (I used df2 = df.loc[[0]])

In [80]: df.sub(df2,fill_value=0)
Out[80]: 
   a  b  c  d  e
0  0  0  0  0  0
1  7  6  0  7  8
2  4  4  3  6  2

[3 rows x 5 columns]
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Alternatively you could simply use the apply function on all rows of df.

df3 = df.apply(lambda x: x-df2.squeeze(), axis=1)
# axis=1 because it should apply to rows instead of columns
# squeeze because we would like to substract Series
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1  
this would be MUCH slower because you are aligning each row! –  Jeff Feb 28 '14 at 15:06
    
Jeff, sorry, you are right. –  IPV3001 Mar 3 '14 at 15:13

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