60

Consider a csv file:

string,date,number
a string,2/5/11 9:16am,1.0
a string,3/5/11 10:44pm,2.0
a string,4/22/11 12:07pm,3.0
a string,4/22/11 12:10pm,4.0
a string,4/29/11 11:59am,1.0
a string,5/2/11 1:41pm,2.0
a string,5/2/11 2:02pm,3.0
a string,5/2/11 2:56pm,4.0
a string,5/2/11 3:00pm,5.0
a string,5/2/14 3:02pm,6.0
a string,5/2/14 3:18pm,7.0

I can read this in, and reformat the date column into datetime format:

b=pd.read_csv('b.dat')
b['date']=pd.to_datetime(b['date'],format='%m/%d/%y %I:%M%p')

I have been trying to group the data by month. It seems like there should be an obvious way of accessing the month and grouping by that. But I can't seem to do it. Does anyone know how?

What I am currently trying is re-indexing by the date:

b.index=b['date']

I can access the month like so:

b.index.month

However I can't seem to find a function to lump together by month.

118

Managed to do it:

df.groupby(by=[b.index.month, b.index.year])

Or

df.groupby(pd.Grouper(freq='M'))  # update for v0.21+
  • 45
    I think the more pandonic ways are to either use resample (when it provides the functionality you need) or use a TimeGrouper: df.groupby(pd.TimeGrouper(freq='M')) – Karl D. Jun 6 '14 at 16:57
  • 6
    to get the result DataFrame sum or average, df.groupby(pd.TimeGrouper(freq='M')).sum() or df.groupby(pd.TimeGrouper(freq='M')).mean() – Alexandre Jan 28 '16 at 21:58
  • 3
    pd.TimeGrouper has been deprecated in favor of pd.Grouper, which is a bit more flexible but still takes freq and level arguments. – BallpointBen Dec 18 '18 at 1:18
44

(update: 2018)

Note that pd.Timegrouper is depreciated and will be removed. Use instead:

 df.groupby(pd.Grouper(freq='M'))
  • 8
    Reading in 2018 :) – jtromans Feb 21 '18 at 13:42
4

One solution which avoids MultiIndex is to create a new datetime column setting day = 1. Then group by this column. Trivial example below.

df = pd.DataFrame({'Date': pd.to_datetime(['2017-10-05', '2017-10-20']),
                   'Values': [5, 10]})

# normalize day to beginning of month
df['YearMonth'] = df['Date'] + pd.offsets.MonthBegin(1)

# two alternative methods
df['YearMonth'] = df['Date'] - pd.to_timedelta(df['Date'].dt.day-1, unit='D')
df['YearMonth'] = df['Date'].map(lambda dt: dt.replace(day=1))

g = df.groupby('YearMonth')

res = g['Values'].sum()

# YearMonth
# 2017-10-01    15
# Name: Values, dtype: int64

The subtle benefit of this solution is, unlike pd.Grouper, the grouper index is normalized to the beginning of each month rather than the end, and therefore you can easily extract groups via get_group:

some_group = g.get_group('2017-10-01')

Calculating the last day of October is slightly more cumbersome. pd.Grouper, as of v0.23, does support a convention parameter, but this is only applicable for a PeriodIndex grouper.

  • 1
    that is pretty awesome, can i ask how would you split and only add the positive number and in a different series add the negative, ending up each month with the total of positve and negative values? – Manza Aug 10 '18 at 6:50
  • 1
    genius. thank you – Ryan Skene Nov 3 '18 at 21:24
3

Slightly alternative solution to @jpp's but outputting a YearMonth string:

df['YearMonth'] = pd.to_datetime(df['Date']).apply(lambda x: '{year}-{month}'.format(year=x.year, month=x.month))

res = df.groupby('YearMonth')['Values'].sum()

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