14

I have a dataframe with a DATE row and I need to convert it to a row of value 1 if the date is a weekend day and 0 if it is not.

So far, I converted the data to weekdays

df['WEEKDAY'] = pandas.to_datetime(df['DATE']).dt.dayofweek

It's there a way to create this "WEEKEND" row without functions?

Thanks!

4
  • Why without functions?
    – kylieCatt
    Aug 28, 2015 at 19:54
  • 6
    df["WEEKDAY"] = df["WEEKDAY"] < 5 (I think at least , this assumes saturday is 5 and sunday is 6) Aug 28, 2015 at 20:00
  • Thanks, @JoranBeasley but it gives TRUE or FALSE and not O and 1.
    – Raul
    Aug 29, 2015 at 16:20
  • But adding .astype(float) as @dagrha's solution it works like a charm! Thanks!
    – Raul
    Aug 29, 2015 at 16:28

5 Answers 5

23

Here's the solution I've come up with:

df['WEEKDAY'] = ((pd.DatetimeIndex(df.index).dayofweek) // 5 == 1).astype(float)

Essentially all it does is use integer division (//) to test whether the dayofweek attribute of the DatetimeIndex is less than 5. Normally this would return just a True or False, but tacking on the astype(float) at the end returns a 1 or 0 rather than a boolean.

4
  • 1
    Very smart, thanks! So I have now two solutions, as df["WEEKDAY"] = (df["WEEKDAY"] < 5).astype(float) also works like a charm!
    – Raul
    Aug 29, 2015 at 16:28
  • 2
    This will work fine although using an inequality as in Joran's comment is much more readable.
    – JohnE
    Aug 29, 2015 at 16:32
  • 2
    This answer appears to be slightly off. The weekdays have values [0,1,2,3,4] and weekends [5,6]. Let's consider the dayofweek 4 : 4//5 != 1 therefore we get a 0. In other words, the answer needs to replace the label 'WEEKDAY' with 'WEEKEND' or the 1 in the predicate needs to be replaced with a 0. Aug 7, 2019 at 0:38
  • you could do this as well df['weekend'] = df['datetime'].dt.dayofweek>=5 ... my dateime is a column not an index but the idea remains the same
    – A.Shoman
    Jun 16, 2021 at 14:09
5

One more way of getting weekend indicator is by where function:

df['WEEKDAY'] = np.where((df['DATE']).dt.dayofweek) < 5,0,1)
0
1

One more way of getting weekend indicator is by first converting the date column to day of the week and then using those values to get weekend/not weekend. This can be implemented as follows:

df['WEEKDAY'] = pandas.to_datetime(df['DATE']).dt.dayofweek  # monday = 0, sunday = 6

df['weekend_indi'] = 0          # Initialize the column with default value of 0
df.loc[df['WEEKDAY'].isin([5, 6]), 'weekend_indi'] = 1  # 5 and 6 correspond to Sat and Sun
1

Found the top voted answer in some codebase. Please don't do it that way, it's completely unreadable. Instead do:

df['weekend'] = df['date'].dt.day_name().isin(['Saturday', 'Sunday'])

Note: df['date'] needs to be in datetime64 or similar format.

0

The simplest solution I found is:

df['WEEKEND'] = df['DATE'].dt.weekday > 4

The question asks for 0 or 1 instead of True and False, just multiply by 1:

df['WEEKEND'] = (df['DATE'].dt.weekday > 4) * 1

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