27

I'm generating a number of dataframes with the same shape, and I want to compare them to one another. I want to be able to get the mean and median across the dataframes.

         Source.0  Source.1  Source.2  Source.3
cluster                                        
0        0.001182  0.184535  0.814230  0.000054
1        0.000001  0.160490  0.839508  0.000001
2        0.000001  0.173829  0.826114  0.000055
3        0.000432  0.180065  0.819502  0.000001
4        0.000152  0.157041  0.842694  0.000113
5        0.000183  0.174142  0.825674  0.000001
6        0.000001  0.151556  0.848405  0.000038
7        0.000771  0.177583  0.821645  0.000001
8        0.000001  0.202059  0.797939  0.000001
9        0.000025  0.189537  0.810410  0.000028
10       0.006142  0.003041  0.493912  0.496905
11       0.003739  0.002367  0.514216  0.479678
12       0.002334  0.001517  0.529041  0.467108
13       0.003458  0.000001  0.532265  0.464276
14       0.000405  0.005655  0.527576  0.466364
15       0.002557  0.003233  0.507954  0.486256
16       0.004161  0.000001  0.491271  0.504568
17       0.001364  0.001330  0.528311  0.468996
18       0.002886  0.000001  0.506392  0.490721
19       0.001823  0.002498  0.509620  0.486059

         Source.0  Source.1  Source.2  Source.3
cluster                                        
0        0.000001  0.197108  0.802495  0.000396
1        0.000001  0.157860  0.842076  0.000063
2        0.094956  0.203057  0.701662  0.000325
3        0.000001  0.181948  0.817841  0.000210
4        0.000003  0.169680  0.830316  0.000001
5        0.000362  0.177194  0.822443  0.000001
6        0.000001  0.146807  0.852924  0.000268
7        0.001087  0.178994  0.819564  0.000354
8        0.000001  0.202182  0.797333  0.000485
9        0.000348  0.181399  0.818252  0.000001
10       0.003050  0.000247  0.506777  0.489926
11       0.004420  0.000001  0.513927  0.481652
12       0.006488  0.001396  0.527197  0.464919
13       0.001510  0.000001  0.525987  0.472502
14       0.000001  0.000001  0.520737  0.479261
15       0.000001  0.001765  0.515658  0.482575
16       0.000001  0.000001  0.492550  0.507448
17       0.002855  0.000199  0.526535  0.470411
18       0.000001  0.001952  0.498303  0.499744
19       0.001232  0.000001  0.506612  0.492155

Then I want to get the mean of these two dataframes.

What is the easiest way to do this?

Just to clarify I want to get the mean for each particular cell when the indexes and columns of all the dataframes are exactly the same.

So in the example I gave, the average for [0,Source.0] would be (0.001182 + 0.000001) / 2 = 0.0005915.

  • 1
    What mean exactly: one single value per variable, or one value per variable-cluster? – FooBar Jul 31 '14 at 11:55
  • For the record, display your data as df.reset_index() if you want us to use your data for test cases. – FooBar Jul 31 '14 at 13:06
29

Assuming the two dataframes have the same columns, you could just concatenate them and compute your summary stats on the concatenated frames:

import numpy as np
import pandas as pd

# some random data frames
df1 = pd.DataFrame(dict(x=np.random.randn(100), y=np.random.randint(0, 5, 100)))
df2 = pd.DataFrame(dict(x=np.random.randn(100), y=np.random.randint(0, 5, 100)))

# concatenate them
df_concat = pd.concat((df1, df2))

print df_concat.mean()
# x   -0.163044
# y    2.120000
# dtype: float64

print df_concat.median()
# x   -0.192037
# y    2.000000
# dtype: float64

Update

If you want to compute stats across each set of rows with the same index in the two datasets, you can use .groupby() to group the data by row index, then apply the mean, median etc.:

by_row_index = df_concat.groupby(df_concat.index)
df_means = by_row_index.mean()

print df_means.head()
#           x    y
# 0 -0.850794  1.5
# 1  0.159038  1.5
# 2  0.083278  1.0
# 3 -0.540336  0.5
# 4  0.390954  3.5

This method will work even when your dataframes have unequal numbers of rows - if a particular row index is missing in one of the two dataframes, the mean/median will be computed on the single existing row.

  • Thanks for the response, Bot the columns and the indexes are the same but I want to get the average accross only one position in the DF if that makes sense, so in the example i gave the average for [0,Source.0] would be (0.001182 + 0.000001) / 2 – Tim Jul 31 '14 at 11:56
  • 2
    You should have responded this to my question in the comments to the original question also ;) – FooBar Jul 31 '14 at 12:56
  • @TimRich .groupby() is probably the simplest way to do this - see @FooBar's answer and my update – ali_m Jul 31 '14 at 13:15
14

I go similar as @ali_m, but since you want one mean per row-column combination, I conclude differently:

df1 = pd.DataFrame(dict(x=np.random.randn(100), y=np.random.randint(0, 5, 100)))
df2 = pd.DataFrame(dict(x=np.random.randn(100), y=np.random.randint(0, 5, 100)))
df = pd.concat([df1, df2])
foo = df.groupby(level=1).mean()
foo.head()

          x    y
0  0.841282  2.5
1  0.716749  1.0
2 -0.551903  2.5
3  1.240736  1.5
4  1.227109  2.0
  • 1
    much faster than my general function, you can also use apply on this for more general functions – ZJS Jul 31 '14 at 18:06
  • great solution! I just had to use Level=1 to not Group on the dataframe names. foo = df.groupby(level=1).mean() – Markus W Feb 24 '16 at 16:21
  • Great, thanks. Very concise. – petezurich Sep 6 '17 at 8:49
6

You can simply assign a label to each frame, call it group and then concat and groupby to do what you want:

In [57]: df = DataFrame(np.random.randn(10, 4), columns=list('abcd'))

In [58]: df2 = df.copy()

In [59]: dfs = [df, df2]

In [60]: df
Out[60]:
        a       b       c       d
0  0.1959  0.1260  0.1464  0.1631
1  0.9344 -1.8154  1.4529 -0.6334
2  0.0390  0.4810  1.1779 -1.1799
3  0.3542  0.3819 -2.0895  0.8877
4 -2.2898 -1.0585  0.8083 -0.2126
5  0.3727 -0.6867 -1.3440 -1.4849
6 -1.1785  0.0885  1.0945 -1.6271
7 -1.7169  0.3760 -1.4078  0.8994
8  0.0508  0.4891  0.0274 -0.6369
9 -0.7019  1.0425 -0.5476 -0.5143

In [61]: for i, d in enumerate(dfs):
   ....:     d['group'] = i
   ....:

In [62]: dfs[0]
Out[62]:
        a       b       c       d  group
0  0.1959  0.1260  0.1464  0.1631      0
1  0.9344 -1.8154  1.4529 -0.6334      0
2  0.0390  0.4810  1.1779 -1.1799      0
3  0.3542  0.3819 -2.0895  0.8877      0
4 -2.2898 -1.0585  0.8083 -0.2126      0
5  0.3727 -0.6867 -1.3440 -1.4849      0
6 -1.1785  0.0885  1.0945 -1.6271      0
7 -1.7169  0.3760 -1.4078  0.8994      0
8  0.0508  0.4891  0.0274 -0.6369      0
9 -0.7019  1.0425 -0.5476 -0.5143      0

In [63]: final = pd.concat(dfs, ignore_index=True)

In [64]: final
Out[64]:
         a       b       c       d  group
0   0.1959  0.1260  0.1464  0.1631      0
1   0.9344 -1.8154  1.4529 -0.6334      0
2   0.0390  0.4810  1.1779 -1.1799      0
3   0.3542  0.3819 -2.0895  0.8877      0
4  -2.2898 -1.0585  0.8083 -0.2126      0
5   0.3727 -0.6867 -1.3440 -1.4849      0
6  -1.1785  0.0885  1.0945 -1.6271      0
..     ...     ...     ...     ...    ...
13  0.3542  0.3819 -2.0895  0.8877      1
14 -2.2898 -1.0585  0.8083 -0.2126      1
15  0.3727 -0.6867 -1.3440 -1.4849      1
16 -1.1785  0.0885  1.0945 -1.6271      1
17 -1.7169  0.3760 -1.4078  0.8994      1
18  0.0508  0.4891  0.0274 -0.6369      1
19 -0.7019  1.0425 -0.5476 -0.5143      1

[20 rows x 5 columns]

In [65]: final.groupby('group').mean()
Out[65]:
           a       b       c       d
group
0     -0.394 -0.0576 -0.0682 -0.4339
1     -0.394 -0.0576 -0.0682 -0.4339

Here, each group is the same, but that's only because df == df2.

Alternatively, you can throw the frames into a Panel:

In [69]: df = DataFrame(np.random.randn(10, 4), columns=list('abcd'))

In [70]: df2 = DataFrame(np.random.randn(10, 4), columns=list('abcd'))

In [71]: panel = pd.Panel({0: df, 1: df2})

In [72]: panel
Out[72]:
<class 'pandas.core.panel.Panel'>
Dimensions: 2 (items) x 10 (major_axis) x 4 (minor_axis)
Items axis: 0 to 1
Major_axis axis: 0 to 9
Minor_axis axis: a to d

In [73]: panel.mean()
Out[73]:
        0       1
a  0.3839  0.2956
b  0.1855 -0.3164
c -0.1167 -0.0627
d -0.2338 -0.0450
  • 1
    A bit late but it should be "panel.mean(axis=0)" based on what the question was asking. I just came across this post and really like the Panel idea! Thanks for that! – Niklas Aug 19 '15 at 19:23
5

As per Niklas' comment, the solution to the question is panel.mean(axis=0).

As a more complete example:

import pandas as pd
import numpy as np

dfs = {}
nrows = 4
ncols = 3
for i in range(4):
    dfs[i] = pd.DataFrame(np.arange(i, nrows*ncols+i).reshape(nrows, ncols),
                          columns=list('abc'))
    print('DF{i}:\n{df}\n'.format(i=i, df=dfs[i]))

panel = pd.Panel(dfs)
print('Mean of stacked DFs:\n{df}'.format(df=panel.mean(axis=0)))

Will give the following output:

DF0:
   a   b   c
0  0   1   2
1  3   4   5
2  6   7   8
3  9  10  11

DF1:
    a   b   c
0   1   2   3
1   4   5   6
2   7   8   9
3  10  11  12

DF2:
    a   b   c
0   2   3   4
1   5   6   7
2   8   9  10
3  11  12  13

DF3:
    a   b   c
0   3   4   5
1   6   7   8
2   9  10  11
3  12  13  14

Mean of stacked DFs:
      a     b     c
0   1.5   2.5   3.5
1   4.5   5.5   6.5
2   7.5   8.5   9.5
3  10.5  11.5  12.5
  • 1
    Ooh I didn't know about panel. Very useful for blending/stacking dataframes. – Tom Walker Nov 4 '17 at 6:49
  • 1
    Mind that the class Panel is now deprecated and will be removed in future versions of Pandas. – Xema Mar 7 '18 at 14:36
4

Here is a solution first unstack both dataframes so they are series with multiindexes(cluster, colnames)... then you can use Series addition and division, which automattically do the operation on the indexes, finally unstack them... here it is in code...

averages = (df1.stack()+df2.stack())/2
averages = averages.unstack()

And your done...

Or for more general purposes...

dfs = [df1,df2]
averages = pd.concat([each.stack() for each in dfs],axis=1)\
             .apply(lambda x:x.mean(),axis=1)\
             .unstack()
  • That'll work fine for the mean, but it's harder to generalize to other summary stats such as the median, which the OP was also asking for. – ali_m Jul 31 '14 at 14:56
  • Didn't keep that in mind when I made the answer but I do think that this solution would absolutely be able to do that you can combine each of the series I made into a dataframe and run the median solution on the frame rowwise yeilding you the seiries which you can unstack – ZJS Jul 31 '14 at 16:00

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