15

I have a table containing dates and the various cars sold on each dates in the following format (These are only 2 of many columns):

DATE       CAR
2012/01/01 BMW
2012/01/01 Mercedes Benz
2012/01/01 BMW
2012/01/02 Volvo
2012/01/02 BMW
2012/01/03 Mercedes Benz
...
2012/09/01 BMW
2012/09/02 Volvo

I perform the following operation to find the number of BMW cars sold everyday

df[df.CAR=='BMW']['DATE'].value_counts()

The result is something like this :

2012/07/04 15
2012/07/08 8
...
2012/01/02 1

But there are some days when no BMW car was sold. In the result, along with the above I want the days where there are zero occurrences of BMW. Therefore, the desired result is :

2012/07/04 15
2012/07/08 8
...
2012/01/02 1
2012/01/09 0
2012/08/11 0

What can I do to attain such a result?

16

You can reindex the result after value_counts and fill the missing values with 0.

df.loc[df.CAR == 'BMW', 'DATE'].value_counts().reindex(
    df.DATE.unique(), fill_value=0)

Output:

2012/01/01    2
2012/01/02    1
2012/01/03    0
2012/09/01    1
2012/09/02    0
Name: DATE, dtype: int64

Instead of value_counts you could also consider checking the equality and summing, grouped by the dates, which will include all of them.

df['CAR'].eq('BMW').astype(int).groupby(df['DATE']).sum()

Output:

DATE
2012/01/01    2
2012/01/02    1
2012/01/03    0
2012/09/01    1
2012/09/02    0
Name: CAR, dtype: int32
0
1

The default behavior of type category is exactly what you want. The non present categories will display with a value of zero. You just need to do:

df.astype({'CAR': 'category'})[df.CAR=='BMW']['DATE'].value_counts()

or better yet, make it definitively a category in your dataframe:

df.CAR = df.CAR.astype('category')
df[df.CAR=='BMW'].DATE.value_counts()

The category type is a better representation of your data and more space-efficient.

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