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How do I convert a string to a date object in python?

The string would be: "24052010" (corresponding to the format: "%d%m%Y")

I don't want a datetime.datetime object, but rather a datetime.date.

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9 Answers 9

793

You can use strptime in the datetime package of Python:

>>> import datetime
>>> datetime.datetime.strptime('24052010', "%d%m%Y").date()
datetime.date(2010, 5, 24)
1
  • I am trying a similar process except for my input string do not have the year, so it looks like '2405'. By default, the year is taken as 1900. The issue occurs when parsing Feb date like '2902'. I get this error ValueError: day is out of range for month. Not sure how I can set the default year while parsing. Apr 19, 2020 at 13:28
109
import datetime
datetime.datetime.strptime('24052010', '%d%m%Y').date()
85

Directly related question:

What if you have

datetime.datetime.strptime("2015-02-24T13:00:00-08:00", "%Y-%B-%dT%H:%M:%S-%H:%M").date()

and you get:

Traceback (most recent call last):
  File "<stdin>", line 1, in <module>
  File "/usr/local/lib/python2.7/_strptime.py", line 308, in _strptime
    format_regex = _TimeRE_cache.compile(format)
  File "/usr/local/lib/python2.7/_strptime.py", line 265, in compile
    return re_compile(self.pattern(format), IGNORECASE)
  File "/usr/local/lib/python2.7/re.py", line 194, in compile
    return _compile(pattern, flags)
  File "/usr/local/lib/python2.7/re.py", line 251, in _compile
    raise error, v # invalid expression
sre_constants.error: redefinition of group name 'H' as group 7; was group 4

and you tried:

<-24T13:00:00-08:00", "%Y-%B-%dT%HH:%MM:%SS-%HH:%MM").date()

but you still get the traceback above.

Answer:

>>> from dateutil.parser import parse
>>> from datetime import datetime
>>> parse("2015-02-24T13:00:00-08:00")
datetime.datetime(2015, 2, 24, 13, 0, tzinfo=tzoffset(None, -28800))
6
  • 3
    2015-07-20 09:46:55+00:00 i have this kind of data, How do i get date object ? Feb 9, 2016 at 8:16
  • Use the re (regular expression) module to change your data from "2015-07-20 09:46:55+00:00" to "2015-07-20T09:46:55-00:00". Then use dateutil.parse to obtain a date object. Feb 9, 2016 at 8:22
  • 2
    Thank you , actually problem was dict type object and i just get solution using dict.get using Feb 9, 2016 at 8:51
  • 3
    Another idea is to read the manual docs.python.org/3/library/… and notice that %B stands for "Month as locale’s full name." which is like "January" or "December" so "02" is not going to parse.
    – Flip
    Feb 23, 2018 at 14:44
  • 3
    The date format string in this is incorrect, it should be a %m not a %B Nov 30, 2018 at 5:10
54

If you are lazy and don't want to fight with string literals, you can just go with the parser module.

from dateutil import parser
dt = parser.parse("Jun 1 2005  1:33PM")
print(dt.year, dt.month, dt.day,dt.hour, dt.minute, dt.second)
>2005 6 1 13 33 0

Just a side note, as we are trying to match any string representation, it is 10x slower than strptime

1
  • 2
    very simply solution, thanks. I was trying to convert an Excel long date that was being displayed as Monday, June 03, 2019 Jun 5, 2019 at 13:33
12

you have a date string like this, "24052010" and you want date object for this,

from datetime import datetime
cus_date = datetime.strptime("24052010", "%d%m%Y").date()

this cus_date will give you date object.

you can retrieve date string from your date object using this,

cus_date.strftime("%d%m%Y")
8

For single value the datetime.strptime method is the fastest

import arrow
from datetime import datetime
import pandas as pd

l = ['24052010']

%timeit _ = list(map(lambda x: datetime.strptime(x, '%d%m%Y').date(), l))
6.86 µs ± 56.5 ns per loop (mean ± std. dev. of 7 runs, 100000 loops each)

%timeit _ = list(map(lambda x: x.date(), pd.to_datetime(l, format='%d%m%Y')))
305 µs ± 6.32 µs per loop (mean ± std. dev. of 7 runs, 1000 loops each)

%timeit _ = list(map(lambda x: arrow.get(x, 'DMYYYY').date(), l))
46 µs ± 978 ns per loop (mean ± std. dev. of 7 runs, 10000 loops each)

For a list of values the pandas pd.to_datetime is the fastest

l = ['24052010'] * 1000

%timeit _ = list(map(lambda x: datetime.strptime(x, '%d%m%Y').date(), l))
6.32 ms ± 89.6 µs per loop (mean ± std. dev. of 7 runs, 100 loops each)

%timeit _ = list(map(lambda x: x.date(), pd.to_datetime(l, format='%d%m%Y')))
1.76 ms ± 27.3 µs per loop (mean ± std. dev. of 7 runs, 1000 loops each)

%timeit _ = list(map(lambda x: arrow.get(x, 'DMYYYY').date(), l))
44.5 ms ± 522 µs per loop (mean ± std. dev. of 7 runs, 10 loops each)

For ISO8601 datetime format the ciso8601 is a rocket

import ciso8601

l = ['2010-05-24'] * 1000

%timeit _ = list(map(lambda x: ciso8601.parse_datetime(x).date(), l))
241 µs ± 3.24 µs per loop (mean ± std. dev. of 7 runs, 1000 loops each)
5

There is another library called arrow really great to make manipulation on python date.

import arrow
import datetime

a = arrow.get('24052010', 'DMYYYY').date()
print(isinstance(a, datetime.date)) # True
3

string "24052010" In a very manual way you could just go like this:- first split the string as (yyyy-mm-dd) format so you could get a tuple something like this (2010, 5, 24), then simply convert this tuple to a date format something like 2010-05-24.

you could run this code on a list of string object similar to above and convert the entire list of tuples object to date object by simply unpacking(*tuple) check the code below.

import datetime
#for single string simply use:-

my_str= "24052010"
date_tup = (int(my_str[4:]),int(my_str[2:4]),int(my_str[:2]))
print(datetime.datetime(*date_tup))

output: 2012-01-01 00:00:00 

# for a list of string date objects you could use below code.
date_list = []
str_date = ["24052010", "25082011", "25122011","01012012"]

for items in str_date:
    date_list.append((int(items[4:]),int(items[2:4]),int(items[:2])))

for dates in date_list:
    # unpack all tuple objects and convert to date
    print(datetime.datetime(*dates))

output:
2010-05-24 00:00:00
2011-08-25 00:00:00
2011-12-25 00:00:00
2012-01-01 00:00:00 
2

Use time module to convert data.

Code snippet:

import time 
tring='20150103040500'
var = int(time.mktime(time.strptime(tring, '%Y%m%d%H%M%S')))
print var

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