135

Is there a pandas built-in way to apply two different aggregating functions f1, f2 to the same column df["returns"], without having to call agg() multiple times?

Example dataframe:

import pandas as pd
import datetime as dt

pd.np.random.seed(0)
df = pd.DataFrame({
         "date"    :  [dt.date(2012, x, 1) for x in range(1, 11)], 
         "returns" :  0.05 * np.random.randn(10), 
         "dummy"   :  np.repeat(1, 10)
}) 

The syntactically wrong, but intuitively right, way to do it would be:

# Assume `f1` and `f2` are defined for aggregating.
df.groupby("dummy").agg({"returns": f1, "returns": f2})

Obviously, Python doesn't allow duplicate keys. Is there any other manner for expressing the input to agg()? Perhaps a list of tuples [(column, function)] would work better, to allow multiple functions applied to the same column? But agg() seems like it only accepts a dictionary.

Is there a workaround for this besides defining an auxiliary function that just applies both of the functions inside of it? (How would this work with aggregation anyway?)

  • Related -Aggregation in pandas – jezrael Jan 26 '19 at 6:00
  • 2
    From 0.25 onwards, pandas provides a more intuitive syntax for multiple aggregations, as well as renaming output columns. See the documentation on Named Aggregations. – cs95 Jun 29 '19 at 5:22
  • FYI this question was asked way back on pandas 0.8.x in 9/2012 – smci Dec 9 '19 at 0:08
  • 1
    FYI the accepted answer is also deprecated - don't pass agg() a dict of dicts. – cs95 Dec 19 '19 at 23:00
  • @cs95: I know it's deprecated, I'm saying SO is becoming littered with old stale solutions from old versions. SO doesn't have a way of marking that - other than comments. – smci Feb 11 at 6:05
167

You can simply pass the functions as a list:

In [20]: df.groupby("dummy").agg({"returns": [np.mean, np.sum]})
Out[20]:         
           mean       sum
dummy                    
1      0.036901  0.369012

or as a dictionary:

In [21]: df.groupby('dummy').agg({'returns':
                                  {'Mean': np.mean, 'Sum': np.sum}})
Out[21]: 
        returns          
           Mean       Sum
dummy                    
1      0.036901  0.369012
| improve this answer | |
108

TLDR; Pandas groupby.agg has a new, easier syntax for specifying (1) aggregations on multiple columns, and (2) multiple aggregations on a column. So, to do this for pandas >= 0.25, use

df.groupby('dummy').agg(Mean=('returns', 'mean'), Sum=('returns', 'sum'))

           Mean       Sum
dummy                    
1      0.036901  0.369012

OR

df.groupby('dummy')['returns'].agg(Mean='mean', Sum='sum')

           Mean       Sum
dummy                    
1      0.036901  0.369012

Pandas >= 0.25: Named Aggregation

Pandas has changed the behavior of GroupBy.agg in favour of a more intuitive syntax for specifying named aggregations. See the 0.25 docs section on Enhancements as well as relevant GitHub issues GH18366 and GH26512.

From the documentation,

To support column-specific aggregation with control over the output column names, pandas accepts the special syntax in GroupBy.agg(), known as “named aggregation”, where

  • The keywords are the output column names
  • The values are tuples whose first element is the column to select and the second element is the aggregation to apply to that column. Pandas provides the pandas.NamedAgg namedtuple with the fields ['column', 'aggfunc'] to make it clearer what the arguments are. As usual, the aggregation can be a callable or a string alias.

You can now pass a tuple via keyword arguments. The tuples follow the format of (<colName>, <aggFunc>).

import pandas as pd

pd.__version__                                                                                                                            
# '0.25.0.dev0+840.g989f912ee'

# Setup
df = pd.DataFrame({'kind': ['cat', 'dog', 'cat', 'dog'],
                   'height': [9.1, 6.0, 9.5, 34.0],
                   'weight': [7.9, 7.5, 9.9, 198.0]
})

df.groupby('kind').agg(
    max_height=('height', 'max'), min_weight=('weight', 'min'),)

      max_height  min_weight
kind                        
cat          9.5         7.9
dog         34.0         7.5

Alternatively, you can use pd.NamedAgg (essentially a namedtuple) which makes things more explicit.

df.groupby('kind').agg(
    max_height=pd.NamedAgg(column='height', aggfunc='max'), 
    min_weight=pd.NamedAgg(column='weight', aggfunc='min')
)

      max_height  min_weight
kind                        
cat          9.5         7.9
dog         34.0         7.5

It is even simpler for Series, just pass the aggfunc to a keyword argument.

df.groupby('kind')['height'].agg(max_height='max', min_height='min')    

      max_height  min_height
kind                        
cat          9.5         9.1
dog         34.0         6.0       

Lastly, if your column names aren't valid python identifiers, use a dictionary with unpacking:

df.groupby('kind')['height'].agg(**{'max height': 'max', ...})

Pandas < 0.25

In more recent versions of pandas leading upto 0.24, if using a dictionary for specifying column names for the aggregation output, you will get a FutureWarning:

df.groupby('dummy').agg({'returns': {'Mean': 'mean', 'Sum': 'sum'}})
# FutureWarning: using a dict with renaming is deprecated and will be removed 
# in a future version

Using a dictionary for renaming columns is deprecated in v0.20. On more recent versions of pandas, this can be specified more simply by passing a list of tuples. If specifying the functions this way, all functions for that column need to be specified as tuples of (name, function) pairs.

df.groupby("dummy").agg({'returns': [('op1', 'sum'), ('op2', 'mean')]})

        returns          
            op1       op2
dummy                    
1      0.328953  0.032895

Or,

df.groupby("dummy")['returns'].agg([('op1', 'sum'), ('op2', 'mean')])

            op1       op2
dummy                    
1      0.328953  0.032895
| improve this answer | |
  • 5
    This should be the top answer because of using a more clear and clean solution using the newer version of the interface. – NKSHELL Oct 18 '19 at 17:40
  • The examples used for named aggregation doesn't solve the original problem of using multiple aggregations on the same column. For example, can you aggregate by both min and max for height without first subsetting for df.groupby('kind')['height']? – victor Dec 8 '19 at 1:31
  • 1
    @victor I added a TLDR at the top of the answer that directly addresses the question. And the answer to your second question is yes, please take a look at the edit on my answer. – cs95 Dec 8 '19 at 9:21
  • A more generic code to the last example of your >=0.25 answer to handle aggregating multiple columns like this would've been great. df.groupby("kind").agg(**{ 'max height': pd.NamedAgg(column='height', aggfunc=max), 'min weight': pd.NamedAgg(column='weight', aggfunc=min) }) – Onur Ece Feb 18 at 16:45
6

Would something like this work:

In [7]: df.groupby('dummy').returns.agg({'func1' : lambda x: x.sum(), 'func2' : lambda x: x.prod()})
Out[7]: 
              func2     func1
dummy                        
1     -4.263768e-16 -0.188565
| improve this answer | |
  • 2
    No, this does not work. If you look at the doc string for aggregate it explicitly says that when a dict is passed, the keys must be column names. So either your example is something you typed in without checking for this error, or else Pandas breaks its own docs here. – ely Sep 26 '12 at 17:31
  • N/M I didn't see the extra call to returns in there. So this is the Series version of aggregate? I'm looking to do the DataFrame version of aggregate, and I want to apply several different aggregations to each column all at once. – ely Sep 26 '12 at 17:52
  • 1
    Try this: df.groupby('dummy').agg({'returns': {'func1' : lambda x: x.sum(), 'func2' : lambda x: x.mean()}}) – Chang She Sep 26 '12 at 19:35
  • It gives an assertion error with no message. From the looks of the code (pandas.core.internals.py, lines 406-408, version 0.7.3) it looks like it does a check at the end to make sure it's not returning more columns than there are keys within the first layer of the aggregation dictionary. – ely Sep 26 '12 at 19:39
  • Works fine on master. You want to try updating? – Chang She Sep 26 '12 at 21:11

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