62

I got a timedelta object from the subtraction of two datetimes. I need this value as floating point for further calculations. All that I've found enables the calculation with floating-points, but the result is still a timedelta object.

time_d = datetime_1 - datetime_2
time_d_float = float(time_d)

does not work.

88

You could use the total_seconds method:

time_d_float = time_d.total_seconds()
4
34

In Python 3.2 or higher, you can divide two timedeltas to give a float. This is useful if you need the value to be in units other than seconds.

time_d_min = time_d / datetime.timedelta(minutes=1)
time_d_ms  = time_d / datetime.timedelta(milliseconds=1)
1
  • I see this as the most natural way to do it. Besides that, it's also great for adapting time implementations of other languages/systems.
    – Wolf
    Sep 17 '19 at 9:02
5

You could use numpy to solve that:

import pandas as pd
import numpy as np

time_d = datetime_1 - datetime_2

#for a single value
number_of_days =pd.DataFrame([time_d]).apply(np.float32)

#for a Dataframe
number_of_days = time_d.apply(np.float32)

Hope it is helpful!

3
  • 1
    I get this error with your suggestion: AttributeError: 'datetime.timedelta' object has no attribute 'apply'
    – lancew
    Sep 21 '17 at 20:06
  • Hi @lancew, thanks for catching that! In that case, I needed to convert a dataframe to float so it worked out for me. If you want to convert a unique value, you could do it: pd.DataFrame([time_d]).apply(np.float32) . In this case, you need to import both 'pandas as pd' and 'numpy as np'. Although I'll be testing other ways. Please, let me know if it works. Sep 22 '17 at 14:59
  • Now, I get this error: "TypeError: float() argument must be a string or a number, not 'Timedelta'" May 4 '21 at 10:20
2

If you needed the number of days as a floating number you can use timedelta's days attribute

time_d = datetime_1 - datetime_2
number_of_days = float(time_d.days)
1
  • 1
    This gives the number of days only. You lose whatever amount of hours minutes or seconds you have in time_d. This is not accurate.
    – lpnorm
    Jun 28 '21 at 11:37
0
from datetime import timedelta,datetime
x1= timedelta(seconds=40, minutes=40, hours=5)
x2= timedelta( seconds=50, minutes=20, hours=4)
x3=x1-x2
x5 = x3.total_seconds()
print(x5)
print(type(x5))
print(type(x1))
print(x1)

# if you are working with Dataframe then use loop (* for-loop).
-5

I had the same problem before and I used timedelta.total_seconds to get Estimated duration into seconds with float and it works. I hope this works for you.

from datetime import timedelta,datetime

time_d = datetime_1 - datetime_2

time_d.total_seconds()                  
1
  • How does this add anything over the currently-accepted answer?
    – Ironcache
    Jun 2 '16 at 13:42

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