329

How would I compare two dates to see which is later, using Python?

For example, I want to check if the current date is past the last date in this list I am creating, of holiday dates, so that it will send an email automatically, telling the admin to update the holiday.txt file.

  • 19
    Er, you use the < and > operators, just like with any other comparison. – Daniel Roseman Nov 15 '11 at 20:00
  • 12
    @JohnMachin: you write a function with prototype int compare_dates(void const *, void const*), cast both arguments to struct Date * and implement the comparison logic. It may not be that obvious to a Python newcomer. – Fred Foo Nov 15 '11 at 20:42
  • 1
    @larsmans: Sorry .... s/any_language/any_reasonable_language/ and anyone used to an unreasonable language should spend a few minutes perusing the docs and trying out date1 < date2 – John Machin Nov 15 '11 at 20:51
  • 2
    docs.python.org/library/datetime.html#datetime-objects Ctrl-F search for "Supported operations" – John Machin Nov 15 '11 at 20:56
  • @FredFoo This question is about Python, not C. – Galaxy May 7 at 3:30
430

Use the datetime method and the operator < and its kin.

>>> from datetime import datetime, timedelta
>>> past = datetime.now() - timedelta(days=1)
>>> present = datetime.now()
>>> past < present
True
>>> datetime(3000, 1, 1) < present
False
>>> present - datetime(2000, 4, 4)
datetime.timedelta(4242, 75703, 762105)
  • 15
    This works for timezone-aware values as well, if anyone was wondering. – Mat Gessel Mar 8 '16 at 1:52
  • 2
    What's different between past and present? I can't understand your example and its result doesn't make sense. – Emadpres Mar 13 '17 at 8:42
  • 17
    @Emadpres: imagine this was typed manually. The past line was typed first, while the present line was typed second... so the past line was entered first, so past < present is True. – ramcdougal Mar 20 '17 at 15:50
  • 2
    Quoting from the doc: "If one comparand is naive and the other is aware, TypeError is raised if an order comparison is attempted. For equality comparisons, naive instances are never equal to aware instances. If both comparands are aware, and have the same tzinfo attribute, the common tzinfo attribute is ignored and the base datetimes are compared. If both comparands are aware and have different tzinfo attributes, the comparands are first adjusted by subtracting their UTC offsets (obtained from self.utcoffset())." – Vikas Prasad Jul 25 '18 at 13:00
  • 1
    The variable names should be past and past_but_a_little_after. Technically, present is also in the past when the comparison past < present is made. – grisaitis Aug 7 '18 at 18:57
63

Use time

Let's say you have the initial dates as strings like these:
date1 = "31/12/2015"
date2 = "01/01/2016"

You can do the following:
newdate1 = time.strptime(date1, "%d/%m/%Y") and newdate2 = time.strptime(date2, "%d/%m/%Y") to convert them to python's date format. Then, the comparison is obvious:

newdate1 > newdate2 will return False
newdate1 < newdate2 will return True

37

datetime.date(2011, 1, 1) < datetime.date(2011, 1, 2) will return True.

datetime.date(2011, 1, 1) - datetime.date(2011, 1, 2) will return datetime.timedelta(-1).

datetime.date(2011, 1, 1) + datetime.date(2011, 1, 2) will return datetime.timedelta(1).

see the docs.

1

Other answers using datetime and comparisons also work for time only, without a date.

For example, to check if right now it is more or less than 8:00 a.m., we can use:

import datetime

eight_am = datetime.time( 8,0,0 ) # Time, without a date

And later compare with:

datetime.datetime.now().time() > eight_am  

which will return True

0

For calculating days in two dates difference, can be done like below:

import datetime
import math

issuedate = datetime(2019,5,9)   #calculate the issue datetime
current_date = datetime.datetime.now() #calculate the current datetime
diff_date = current_date - issuedate #//calculate the date difference with time also
amount = fine  #you want change

if diff_date.total_seconds() > 0.0:   #its matching your condition
    days = math.ceil(diff_date.total_seconds()/86400)  #calculate days (in 
    one day 86400 seconds)
    deductable_amount = round(amount,2)*days #calclulated fine for all days

Becuase if one second is more with the due date then we have to charge

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