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i try to get the number of rows of dataframe df, both code snippets give me an error: TypeError: unsupported operand type(s) for +: 'instancemethod' and 'int'

total_rows = df.count
print total_rows +1

total_rows = df['First_columnn_label'].count
print total_rows +1

I'd be grateful for any suggestions what I'm doing wrong.

EDIT: According to the answer given by root the best (the fastest) way to check df length is to call:

len(df.index)
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1  
ok I found out, i should have called method not check property, so it should be df.count() no df.count –  yemu Apr 11 '13 at 8:15
    
^ Dangerous! Beware that df.count() will only return the count of non-NA/NaN rows for each column. You should use df.shape[0] instead, which will always correctly tell you the number of rows. –  smci Apr 18 at 12:04

2 Answers 2

up vote 41 down vote accepted

You can use the .shape property or just len(DataFrame.index) as there are notable performance differences:

In [1]: import numpy as np

In [2]: import pandas as pd

In [3]: df =pd.DataFrame(np.arange(9).reshape(3,3))

In [4]: df
Out[4]: 
   0  1  2
0  0  1  2
1  3  4  5
2  6  7  8

In [5]: df.shape
Out[5]: (3, 3)

In [6]: timeit df.shape
1000000 loops, best of 3: 1.17 us per loop

In [7]: timeit df[0].count()
10000 loops, best of 3: 56 us per loop

In [8]: len(df.index)
Out[8]: 3

In [9]: timeit len(df.index)
1000000 loops, best of 3: 381 ns per loop

EDIT: As noted @Dan Allen in the comments len(df.index) and df[0].count() are not interchangeable as count excludes NaNs,

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Also, remember that len(df.index) and df[0].count() are not interchangeable: count excludes NaNs, which is probably helps explain why it is slower. –  Dan Allan Apr 11 '13 at 14:18
    
@DanAllan -- Yes, included that in the answer. Thanks. –  root Apr 11 '13 at 15:04
1  
There's one good reason why to use shape in interactive work, instead of len(df): Trying out different filtering, I often need to know how many items remain. With shape I can see that just by adding .shape after my filtering. With len() the editing of the command-line becomes much more cumbersome, going back and forth. –  K.-Michael Aye Feb 25 at 4:51

Use len(df). This works as of pandas 0.11 or maybe even earlier.

__len__() is currently (0.12) documented with Returns length of index. Timing info, set up the same way as in root's answer:

In [7]: timeit len(df.index)
1000000 loops, best of 3: 248 ns per loop

In [8]: timeit len(df)
1000000 loops, best of 3: 573 ns per loop

Due to one additional function call it is a bit slower than calling len(df.index) directly, but this should not play any role in most use cases.

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