296

I want to group my dataframe by two columns and then sort the aggregated results within those groups.

In [167]: df

Out[167]:
   count     job source
0      2   sales      A
1      4   sales      B
2      6   sales      C
3      3   sales      D
4      7   sales      E
5      5  market      A
6      3  market      B
7      2  market      C
8      4  market      D
9      1  market      E


In [168]: df.groupby(['job','source']).agg({'count':sum})

Out[168]:
               count
job    source       
market A           5
       B           3
       C           2
       D           4
       E           1
sales  A           2
       B           4
       C           6
       D           3
       E           7

I would now like to sort the 'count' column in descending order within each of the groups, and then take only the top three rows. To get something like:

                count
job     source
market  A           5
        D           4
        B           3
sales   E           7
        C           6
        B           4
1
  • The reason this is tricky in pandas is when you groupby more than one group, the intermediate (grouper) object gets a multiindex containing those groups, and the original index is dropped. Unless you override the default groupby(... as_index=True)
    – smci
    Jun 16, 2022 at 0:39

9 Answers 9

297

You could also just do it in one go, by doing the sort first and using head to take the first 3 of each group.

In[34]: df.sort_values(['job','count'],ascending=False).groupby('job').head(3)

Out[35]: 
   count     job source
4      7   sales      E
2      6   sales      C
1      4   sales      B
5      5  market      A
8      4  market      D
6      3  market      B
7
  • 32
    Does groupby guarantees that the order is preserved?
    – toto_tico
    May 10, 2017 at 8:17
  • 78
    It seems it does; from the documentation of groupby: groupby preserves the order of rows within each group
    – toto_tico
    May 10, 2017 at 8:22
  • 23
    toto_tico- That is correct, however care needs to be taken in interpreting that statement. The order of rows WITHIN A SINGLE GROUP are preserved, however groupby has a sort=True statement by default which means the groups themselves may have been sorted on the key. In other words if my dataframe has keys (on input) 3 2 2 1,.. the group by object will shows the 3 groups in the order 1 2 3 (sorted). Use sort=False to make sure group order and row order are preserved.
    – brian_ds
    Oct 9, 2018 at 16:19
  • 6
    head(3) gives more than 3 results?
    – Nabin
    Aug 3, 2019 at 11:49
  • 2
    I don't understand why this got most of the votes, while it did not take care of the sum() of the 'count'. If one adds an extra line with the values ('sales', 'A', 6) one can see that this solution does not add the 2 + 6 of ('sales', 'A') which is 8 and should be the first line of the result.
    – Zvi
    May 5, 2021 at 14:54
219

What you want to do is actually again a groupby (on the result of the first groupby): sort and take the first three elements per group.

Starting from the result of the first groupby:

In [60]: df_agg = df.groupby(['job','source']).agg({'count':sum})

We group by the first level of the index:

In [63]: g = df_agg['count'].groupby('job', group_keys=False)

Then we want to sort ('order') each group and take the first three elements:

In [64]: res = g.apply(lambda x: x.sort_values(ascending=False).head(3))

However, for this, there is a shortcut function to do this, nlargest:

In [65]: g.nlargest(3)
Out[65]:
job     source
market  A         5
        D         4
        B         3
sales   E         7
        C         6
        B         4
dtype: int64

So in one go, this looks like:

df_agg['count'].groupby('job', group_keys=False).nlargest(3)
7
  • Would there be a way to sum up everything that isn't contained in the top three results per group and add them to a source group called "other" for each job?
    – JoeDanger
    Jan 11, 2015 at 20:15
  • Thanks for the great answer. For a further step, would there be a way to assign the sorting order based on values in the groupby column? For instance, sort ascending if the value is 'Buy' and sort descending if the value is 'Sell'.
    – Bowen Liu
    Jul 7, 2020 at 20:05
  • It might be easier to just use as_index=False to create a normal data frame and then sort as normal. Oct 28, 2020 at 0:33
  • @young_souvlaki you still need a groupby operation to take only the first 3 per group, that's not possible with a normal sort
    – joris
    Oct 28, 2020 at 7:08
  • @joris as_index is a groupby parameter. Are we on the same page? Oct 30, 2020 at 22:56
36

Here's other example of taking top 3 on sorted order, and sorting within the groups:

In [43]: import pandas as pd                                                                                                                                                       

In [44]:  df = pd.DataFrame({"name":["Foo", "Foo", "Baar", "Foo", "Baar", "Foo", "Baar", "Baar"], "count_1":[5,10,12,15,20,25,30,35], "count_2" :[100,150,100,25,250,300,400,500]})

In [45]: df                                                                                                                                                                        
Out[45]: 
   count_1  count_2  name
0        5      100   Foo
1       10      150   Foo
2       12      100  Baar
3       15       25   Foo
4       20      250  Baar
5       25      300   Foo
6       30      400  Baar
7       35      500  Baar


### Top 3 on sorted order:
In [46]: df.groupby(["name"])["count_1"].nlargest(3)                                                                                                                               
Out[46]: 
name   
Baar  7    35
      6    30
      4    20
Foo   5    25
      3    15
      1    10
dtype: int64


### Sorting within groups based on column "count_1":
In [48]: df.groupby(["name"]).apply(lambda x: x.sort_values(["count_1"], ascending = False)).reset_index(drop=True)
Out[48]: 
   count_1  count_2  name
0       35      500  Baar
1       30      400  Baar
2       20      250  Baar
3       12      100  Baar
4       25      300   Foo
5       15       25   Foo
6       10      150   Foo
7        5      100   Foo
30

Try this Instead, which is a simple way to do groupby and sorting in descending order:

df.groupby(['companyName'])['overallRating'].sum().sort_values(ascending=False).head(20)
15

If you don't need to sum a column, then use @tvashtar's answer. If you do need to sum, then you can use @joris' answer or this one which is very similar to it.

df.groupby(['job']).apply(lambda x: (x.groupby('source')
                                      .sum()
                                      .sort_values('count', ascending=False))
                                     .head(3))
2

When grouped dataframe contains more than one grouped column ("multi-index"), using other methods erases other columns:

edf = pd.DataFrame({"job":["sales", "sales", "sales", "sales", "sales",
                           "market", "market", "market", "market", "market"],
                    "source":["A", "B", "C", "D", "E", "A", "B", "C", "D", "E"],
                    "count":[2, 4,6,3,7,5,3,2,4,1],
                    "other_col":[1,2,3,4,56,6,3,4,6,11]})

gdf = edf.groupby(["job", "source"]).agg({"count":sum, "other_col":np.mean})
gdf.groupby(level=0, group_keys=False).apply(lambda g:g.sort_values("count", ascending=False))

This keeps other_col as well as ordering by count column within each group

1

I was getting this error without using "by":

TypeError: sort_values() missing 1 required positional argument: 'by'

So, I changed it to this and now it's working:

df.groupby(['job','source']).agg({'count':sum}).sort_values(by='count',ascending=False).head(20)

0

You can do it in one line -

df.groupby(['job']).apply(lambda x: x.sort_values(['count'], ascending=False).head(3)
.drop('job', axis=1))

what apply() does is that it takes each group of groupby and assigns it to the x in lambda function.

0

@joris answer helped a lot. This is what worked for me.

df.groupby(['job'])['count'].nlargest(3)

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