Aggregation in pandas

If you are coming from an R or SQL background, here are three examples that will teach you everything you need to do aggregation the way you are already familiar with:

Let us first create a Pandas dataframe

import pandas as pd

df = pd.DataFrame({'key1' : ['a','a','a','b','a'],
                   'key2' : ['c','c','d','d','e'],
                   'value1' : [1,2,2,3,3],
                   'value2' : [9,8,7,6,5]})

df.head(5)

Here is how the table we created looks like:

key1 key2 value1 value2
a c 1 9
a c 2 8
a d 2 7
b d 3 6
a e 3 5

1. Aggregating With Row Reduction Similar to SQL Group By

1.1 If Pandas version >=0.25

Check your Pandas version by running print(pd.__version__). If your Pandas version is 0.25 or above then the following code will work:

df_agg = df.groupby(['key1','key2']).agg(mean_of_value_1=('value1', 'mean'),
                                         sum_of_value_2=('value2', 'sum'),
                                         count_of_value1=('value1','size')
                                         ).reset_index()


df_agg.head(5)

The resulting data table will look like this:

key1 key2 mean_of_value1 sum_of_value2 count_of_value1
a c 1.5 17 2
a d 2.0 7 1
a e 3.0 5 1
b d 3.0 6 1

The SQL equivalent of this is:

SELECT
      key1
     ,key2
     ,AVG(value1) AS mean_of_value_1
     ,SUM(value2) AS sum_of_value_2
     ,COUNT(*) AS count_of_value1
FROM
    df
GROUP BY
     key1
    ,key2

1.2 If Pandas version <0.25

If your Pandas version is older than 0.25 then running the above code will give you the following error:

TypeError: aggregate() missing 1 required positional argument: 'arg'

Now to do the aggregation for both value1 and value2, you will run this code:

df_agg = df.groupby(['key1','key2'],as_index=False).agg({'value1':['mean','count'],'value2':'sum'})

df_agg.columns = ['_'.join(col).strip() for col in df_agg.columns.values]

df_agg.head(5)

The resulting table will look like this:

key1 key2 value1_mean value1_count value2_sum
a c 1.5 2 17
a d 2.0 1 7
a e 3.0 1 5
b d 3.0 1 6

Renaming the columns needs to be done separately using the below code:

df_agg.rename(columns={"value1_mean" : "mean_of_value1",
                       "value1_count" : "count_of_value1",
                       "value2_sum" : "sum_of_value2"
                       }, inplace=True)

2. Create a Column Without Reduction in Rows (EXCEL - SUMIF, COUNTIF)

If you want to do a SUMIF, COUNTIF, etc., like how you would do in Excel where there is no reduction in rows, then you need to do this instead.

df['Total_of_value1_by_key1'] = df.groupby('key1')['value1'].transform('sum')

df.head(5)

The resulting data frame will look like this with the same number of rows as the original:

key1 key2 value1 value2 Total_of_value1_by_key1
a c 1 9 8
a c 2 8 8
a d 2 7 8
b d 3 6 3
a e 3 5 8

3. Creating a RANK Column ROW_NUMBER() OVER (PARTITION BY ORDER BY)

Finally, there might be cases where you want to create a rank column which is the SQL equivalent of ROW_NUMBER() OVER (PARTITION BY key1 ORDER BY value1 DESC, value2 ASC).

Here is how you do that.

 df['RN'] = df.sort_values(['value1','value2'], ascending=[False,True]) \
              .groupby(['key1']) \
              .cumcount() + 1

 df.head(5)

Note: we make the code multi-line by adding \ at the end of each line.

Here is how the resulting data frame looks like:

key1 key2 value1 value2 RN
a c 1 9 4
a c 2 8 3
a d 2 7 2
b d 3 6 1
a e 3 5 1

In all the examples above, the final data table will have a table structure and won't have the pivot structure that you might get in other syntaxes.

Other aggregating operators:

mean() Compute mean of groups

sum() Compute sum of group values

size() Compute group sizes

count() Compute count of group

std() Standard deviation of groups

var() Compute variance of groups

sem() Standard error of the mean of groups

describe() Generates descriptive statistics

first() Compute first of group values

last() Compute last of group values

nth() Take nth value, or a subset if n is a list

min() Compute min of group values

max() Compute max of group values


Question 1

How can I perform aggregation with Pandas?

Expanded aggregation documentation.

Aggregating functions are the ones that reduce the dimension of the returned objects. It means output Series/DataFrame have less or same rows like original.

Some common aggregating functions are tabulated below:

Function    Description
mean()         Compute mean of groups
sum()         Compute sum of group values
size()         Compute group sizes
count()     Compute count of group
std()         Standard deviation of groups
var()         Compute variance of groups
sem()         Standard error of the mean of groups
describe()     Generates descriptive statistics
first()     Compute first of group values
last()         Compute last of group values
nth()         Take nth value, or a subset if n is a list
min()         Compute min of group values
max()         Compute max of group values
np.random.seed(123)

df = pd.DataFrame({'A' : ['foo', 'foo', 'bar', 'foo', 'bar', 'foo'],
                   'B' : ['one', 'two', 'three','two', 'two', 'one'],
                   'C' : np.random.randint(5, size=6),
                   'D' : np.random.randint(5, size=6),
                   'E' : np.random.randint(5, size=6)})
print (df)
     A      B  C  D  E
0  foo    one  2  3  0
1  foo    two  4  1  0
2  bar  three  2  1  1
3  foo    two  1  0  3
4  bar    two  3  1  4
5  foo    one  2  1  0

Aggregation by filtered columns and Cython implemented functions:

df1 = df.groupby(['A', 'B'], as_index=False)['C'].sum()
print (df1)
     A      B  C
0  bar  three  2
1  bar    two  3
2  foo    one  4
3  foo    two  5

An aggregate function is used for all columns without being specified in the groupby function, here the A, B columns:

df2 = df.groupby(['A', 'B'], as_index=False).sum()
print (df2)
     A      B  C  D  E
0  bar  three  2  1  1
1  bar    two  3  1  4
2  foo    one  4  4  0
3  foo    two  5  1  3

You can also specify only some columns used for aggregation in a list after the groupby function:

df3 = df.groupby(['A', 'B'], as_index=False)['C','D'].sum()
print (df3)
     A      B  C  D
0  bar  three  2  1
1  bar    two  3  1
2  foo    one  4  4
3  foo    two  5  1

Same results by using function DataFrameGroupBy.agg:

df1 = df.groupby(['A', 'B'], as_index=False)['C'].agg('sum')
print (df1)
     A      B  C
0  bar  three  2
1  bar    two  3
2  foo    one  4
3  foo    two  5

df2 = df.groupby(['A', 'B'], as_index=False).agg('sum')
print (df2)
     A      B  C  D  E
0  bar  three  2  1  1
1  bar    two  3  1  4
2  foo    one  4  4  0
3  foo    two  5  1  3

For multiple functions applied for one column use a list of tuples - names of new columns and aggregated functions:

df4 = (df.groupby(['A', 'B'])['C']
         .agg([('average','mean'),('total','sum')])
         .reset_index())
print (df4)
     A      B  average  total
0  bar  three      2.0      2
1  bar    two      3.0      3
2  foo    one      2.0      4
3  foo    two      2.5      5

If want to pass multiple functions is possible pass list of tuples:

df5 = (df.groupby(['A', 'B'])
         .agg([('average','mean'),('total','sum')]))

print (df5)
                C             D             E
          average total average total average total
A   B
bar three     2.0     2     1.0     1     1.0     1
    two       3.0     3     1.0     1     4.0     4
foo one       2.0     4     2.0     4     0.0     0
    two       2.5     5     0.5     1     1.5     3

Then get MultiIndex in columns:

print (df5.columns)
MultiIndex(levels=[['C', 'D', 'E'], ['average', 'total']],
           labels=[[0, 0, 1, 1, 2, 2], [0, 1, 0, 1, 0, 1]])

And for converting to columns, flattening MultiIndex use map with join:

df5.columns = df5.columns.map('_'.join)
df5 = df5.reset_index()
print (df5)
     A      B  C_average  C_total  D_average  D_total  E_average  E_total
0  bar  three        2.0        2        1.0        1        1.0        1
1  bar    two        3.0        3        1.0        1        4.0        4
2  foo    one        2.0        4        2.0        4        0.0        0
3  foo    two        2.5        5        0.5        1        1.5        3

Another solution is pass list of aggregate functions, then flatten MultiIndex and for another columns names use str.replace:

df5 = df.groupby(['A', 'B']).agg(['mean','sum'])

df5.columns = (df5.columns.map('_'.join)
                  .str.replace('sum','total')
                  .str.replace('mean','average'))
df5 = df5.reset_index()
print (df5)
     A      B  C_average  C_total  D_average  D_total  E_average  E_total
0  bar  three        2.0        2        1.0        1        1.0        1
1  bar    two        3.0        3        1.0        1        4.0        4
2  foo    one        2.0        4        2.0        4        0.0        0
3  foo    two        2.5        5        0.5        1        1.5        3

If want specified each column with aggregated function separately pass dictionary:

df6 = (df.groupby(['A', 'B'], as_index=False)
         .agg({'C':'sum','D':'mean'})
         .rename(columns={'C':'C_total', 'D':'D_average'}))
print (df6)
     A      B  C_total  D_average
0  bar  three        2        1.0
1  bar    two        3        1.0
2  foo    one        4        2.0
3  foo    two        5        0.5

You can pass custom function too:

def func(x):
    return x.iat[0] + x.iat[-1]

df7 = (df.groupby(['A', 'B'], as_index=False)
         .agg({'C':'sum','D': func})
         .rename(columns={'C':'C_total', 'D':'D_sum_first_and_last'}))
print (df7)
     A      B  C_total  D_sum_first_and_last
0  bar  three        2                     2
1  bar    two        3                     2
2  foo    one        4                     4
3  foo    two        5                     1

Question 2

No DataFrame after aggregation! What happened?

Aggregation by two or more columns:

df1 = df.groupby(['A', 'B'])['C'].sum()
print (df1)
A    B
bar  three    2
     two      3
foo  one      4
     two      5
Name: C, dtype: int32

First check the Index and type of a Pandas object:

print (df1.index)
MultiIndex(levels=[['bar', 'foo'], ['one', 'three', 'two']],
           labels=[[0, 0, 1, 1], [1, 2, 0, 2]],
           names=['A', 'B'])

print (type(df1))
<class 'pandas.core.series.Series'>

There are two solutions for how to get MultiIndex Series to columns:

  • add parameter as_index=False
df1 = df.groupby(['A', 'B'], as_index=False)['C'].sum()
print (df1)
     A      B  C
0  bar  three  2
1  bar    two  3
2  foo    one  4
3  foo    two  5
  • use Series.reset_index:
df1 = df.groupby(['A', 'B'])['C'].sum().reset_index()
print (df1)
     A      B  C
0  bar  three  2
1  bar    two  3
2  foo    one  4
3  foo    two  5

If group by one column:

df2 = df.groupby('A')['C'].sum()
print (df2)
A
bar    5
foo    9
Name: C, dtype: int32

... get Series with Index:

print (df2.index)
Index(['bar', 'foo'], dtype='object', name='A')

print (type(df2))
<class 'pandas.core.series.Series'>

And the solution is the same like in the MultiIndex Series:

df2 = df.groupby('A', as_index=False)['C'].sum()
print (df2)
     A  C
0  bar  5
1  foo  9

df2 = df.groupby('A')['C'].sum().reset_index()
print (df2)
     A  C
0  bar  5
1  foo  9

Question 3

How can I aggregate mainly strings columns (to lists, tuples, strings with separator)?

df = pd.DataFrame({'A' : ['a', 'c', 'b', 'b', 'a', 'c', 'b'],
                   'B' : ['one', 'two', 'three','two', 'two', 'one', 'three'],
                   'C' : ['three', 'one', 'two', 'two', 'three','two', 'one'],
                   'D' : [1,2,3,2,3,1,2]})
print (df)
   A      B      C  D
0  a    one  three  1
1  c    two    one  2
2  b  three    two  3
3  b    two    two  2
4  a    two  three  3
5  c    one    two  1
6  b  three    one  2

Instead of an aggregation function, it is possible to pass list, tuple, set for converting the column:

df1 = df.groupby('A')['B'].agg(list).reset_index()
print (df1)
   A                    B
0  a           [one, two]
1  b  [three, two, three]
2  c           [two, one]

An alternative is use GroupBy.apply:

df1 = df.groupby('A')['B'].apply(list).reset_index()
print (df1)
   A                    B
0  a           [one, two]
1  b  [three, two, three]
2  c           [two, one]

For converting to strings with a separator, use .join only if it is a string column:

df2 = df.groupby('A')['B'].agg(','.join).reset_index()
print (df2)
   A                B
0  a          one,two
1  b  three,two,three
2  c          two,one

If it is a numeric column, use a lambda function with astype for converting to strings:

df3 = (df.groupby('A')['D']
         .agg(lambda x: ','.join(x.astype(str)))
         .reset_index())
print (df3)
   A      D
0  a    1,3
1  b  3,2,2
2  c    2,1

Another solution is converting to strings before groupby:

df3 = (df.assign(D = df['D'].astype(str))
         .groupby('A')['D']
         .agg(','.join).reset_index())
print (df3)
   A      D
0  a    1,3
1  b  3,2,2
2  c    2,1

For converting all columns, don't pass a list of column(s) after groupby. There isn't any column D, because automatic exclusion of 'nuisance' columns. It means all numeric columns are excluded.

df4 = df.groupby('A').agg(','.join).reset_index()
print (df4)
   A                B            C
0  a          one,two  three,three
1  b  three,two,three  two,two,one
2  c          two,one      one,two

So it's necessary to convert all columns into strings, and then get all columns:

df5 = (df.groupby('A')
         .agg(lambda x: ','.join(x.astype(str)))
         .reset_index())
print (df5)
   A                B            C      D
0  a          one,two  three,three    1,3
1  b  three,two,three  two,two,one  3,2,2
2  c          two,one      one,two    2,1

Question 4

How can I aggregate counts?

df = pd.DataFrame({'A' : ['a', 'c', 'b', 'b', 'a', 'c', 'b'],
                   'B' : ['one', 'two', 'three','two', 'two', 'one', 'three'],
                   'C' : ['three', np.nan, np.nan, 'two', 'three','two', 'one'],
                   'D' : [np.nan,2,3,2,3,np.nan,2]})
print (df)
   A      B      C    D
0  a    one  three  NaN
1  c    two    NaN  2.0
2  b  three    NaN  3.0
3  b    two    two  2.0
4  a    two  three  3.0
5  c    one    two  NaN
6  b  three    one  2.0

Function GroupBy.size for size of each group:

df1 = df.groupby('A').size().reset_index(name='COUNT')
print (df1)
   A  COUNT
0  a      2
1  b      3
2  c      2

Function GroupBy.count excludes missing values:

df2 = df.groupby('A')['C'].count().reset_index(name='COUNT')
print (df2)
   A  COUNT
0  a      2
1  b      2
2  c      1

This function should be used for multiple columns for counting non-missing values:

df3 = df.groupby('A').count().add_suffix('_COUNT').reset_index()
print (df3)
   A  B_COUNT  C_COUNT  D_COUNT
0  a        2        2        1
1  b        3        2        3
2  c        2        1        1

A related function is Series.value_counts. It returns the size of the object containing counts of unique values in descending order, so that the first element is the most frequently-occurring element. It excludes NaNs values by default.

df4 = (df['A'].value_counts()
              .rename_axis('A')
              .reset_index(name='COUNT'))
print (df4)
   A  COUNT
0  b      3
1  a      2
2  c      2

If you want same output like using function groupby + size, add Series.sort_index:

df5 = (df['A'].value_counts()
              .sort_index()
              .rename_axis('A')
              .reset_index(name='COUNT'))
print (df5)
   A  COUNT
0  a      2
1  b      3
2  c      2

Question 5

How can I create a new column filled by aggregated values?

Method GroupBy.transform returns an object that is indexed the same (same size) as the one being grouped.

See the Pandas documentation for more information.

np.random.seed(123)

df = pd.DataFrame({'A' : ['foo', 'foo', 'bar', 'foo', 'bar', 'foo'],
                    'B' : ['one', 'two', 'three','two', 'two', 'one'],
                    'C' : np.random.randint(5, size=6),
                    'D' : np.random.randint(5, size=6)})
print (df)
     A      B  C  D
0  foo    one  2  3
1  foo    two  4  1
2  bar  three  2  1
3  foo    two  1  0
4  bar    two  3  1
5  foo    one  2  1


df['C1'] = df.groupby('A')['C'].transform('sum')
df['C2'] = df.groupby(['A','B'])['C'].transform('sum')


df[['C3','D3']] = df.groupby('A')['C','D'].transform('sum')
df[['C4','D4']] = df.groupby(['A','B'])['C','D'].transform('sum')

print (df)

     A      B  C  D  C1  C2  C3  D3  C4  D4
0  foo    one  2  3   9   4   9   5   4   4
1  foo    two  4  1   9   5   9   5   5   1
2  bar  three  2  1   5   2   5   2   2   1
3  foo    two  1  0   9   5   9   5   5   1
4  bar    two  3  1   5   3   5   2   3   1
5  foo    one  2  1   9   4   9   5   4   4