22

I have a pandas dataframe like following..

item_id        date
  101     2016-01-05
  101     2016-01-21
  121     2016-01-08
  121     2016-01-22
  128     2016-01-19
  128     2016-02-17
  131     2016-01-11
  131     2016-01-23
  131     2016-01-24
  131     2016-02-06
  131     2016-02-07

I want to calculate days difference between date column but with respect to item_id column. First I want to sort the dataframe with date grouping on item_id. It should look like this

item_id        date     
  101     2016-01-05         
  101     2016-01-08         
  121     2016-01-21         
  121     2016-01-22         
  128     2016-01-17         
  128     2016-02-19
  131     2016-01-11
  131     2016-01-23
  131     2016-01-24
  131     2016-02-06
  131     2016-02-07

Then I want to calculate the difference between dates again grouping on item_id So the output should look like following

 item_id        date      day_difference 
  101     2016-01-05          0
  101     2016-01-08          3
  121     2016-01-21          0
  121     2016-01-22          1
  128     2016-01-17          0
  128     2016-02-19          2
  131     2016-01-11          0
  131     2016-01-23          12
  131     2016-01-24          1
  131     2016-02-06          13 
  131     2016-02-07          1

For sorting I used something like this

df.groupby('item_id').apply(lambda x: new_df.sort('date'))

But,it didn't work out. I am able to calculate the difference between consecutive rows by following

(df['date'] - df['date'].shift(1))

But not for grouping with item_id

1
  • 1
    you want df.groupby('item_id')['date'].diff()
    – EdChum
    Commented Feb 21, 2016 at 8:56

2 Answers 2

38

I think you can use:

df['date'] = df.groupby('item_id')['date'].apply(lambda x: x.sort_values())

df['diff'] = df.groupby('item_id')['date'].diff() / np.timedelta64(1, 'D')
df['diff'] = df['diff'].fillna(0)
print df
    item_id       date  diff
0       101 2016-01-05     0
1       101 2016-01-21    16
2       121 2016-01-08     0
3       121 2016-01-22    14
4       128 2016-01-19     0
5       128 2016-02-17    29
6       131 2016-01-11     0
7       131 2016-01-23    12
8       131 2016-01-24     1
9       131 2016-02-06    13
10      131 2016-02-07     1
0
3

You can also try:

df.date.diff().fillna(pd.Timedelta(seconds=0))

Note: .fillna(0) is no longer supported for timedelta dtype

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