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I get the following error:

time data '07/28/2014 18:54:55.099000' does not match format '%d/%m/%Y %H:%M:%S.%f'

But I cannot see what parameter is wrong in %d/%m/%Y %H:%M:%S.%f ?

This is the code I use.

from datetime import datetime
time_value = datetime.strptime(csv_line[0] + '000', '%d/%m/%Y %H:%M:%S.%f')

I have added and removed the 000 but I get the same error.

0

10 Answers 10

135

You have the month and day swapped:

'%m/%d/%Y %H:%M:%S.%f'

28 will never fit in the range for the %m month parameter otherwise.

With %m and %d in the correct order parsing works:

>>> from datetime import datetime
>>> datetime.strptime('07/28/2014 18:54:55.099000', '%m/%d/%Y %H:%M:%S.%f')
datetime.datetime(2014, 7, 28, 18, 54, 55, 99000)

You don't need to add '000'; %f can parse shorter numbers correctly:

>>> datetime.strptime('07/28/2014 18:54:55.099', '%m/%d/%Y %H:%M:%S.%f')
datetime.datetime(2014, 7, 28, 18, 54, 55, 99000)
0
84

While the above answer is 100% helpful and correct, I'd like to add the following since only a combination of the above answer and reading through the pandas doc helped me:

2-digit / 4-digit year

It is noteworthy, that in order to parse through a 2-digit year, e.g. '90' rather than '1990', a %y is required instead of a %Y.

Infer the datetime automatically

If parsing with a pre-defined format still doesn't work for you, try using the flag infer_datetime_format=True, for example:

yields_df['Date'] = pd.to_datetime(yields_df['Date'], infer_datetime_format=True)

Be advised that this solution is slower than using a pre-defined format.

2
  • 2
    This is a great solution for the endless date format issues, thanks @whiletrue ! Jun 11, 2021 at 8:35
  • 2
    Thanks for the %Y tip, solved my problem
    – tnfru
    Dec 7, 2021 at 18:51
18

No need to use datetime library. Using the dateutil library there is no need of any format:

>>> from dateutil import parser
>>> s= '25 April, 2020, 2:50, pm, IST'
>>> parser.parse(s)
datetime.datetime(2020, 4, 25, 14, 50)
4
  • 1
    For me it gives an UnknownTimezoneWarning in Python 3.7 with IST. It works with CET. Apr 28, 2020 at 6:38
  • 1
    Just this from dateutil import parser;parser.parse('25 April, 2020, 2:50, pm, IST'), I use the python3-dateutil 2.7.3-3 package in Debian 10. I haven't checked the latest version with pip. Apr 28, 2020 at 18:22
  • Well answered. This is the best approach without mentioning the format. +1 for that.
    – Swarup
    Aug 25, 2020 at 14:37
  • Simple solution, worked perfectly. I was struggling with a client that would sometimes send me xx:xx or xx:xx:xx for time and I would get errors. Mar 31, 2021 at 22:35
4

I had a case where solution was hard to figure out. This is not exactly relevant to particular question, but might help someone looking to solve a case with same error message when strptime is fed with timezone information. In my case, the reason for throwing

ValueError: time data '2016-02-28T08:27:16.000-07:00' does not match format '%Y-%m-%dT%H:%M:%S.%f%z'

was presence of last colon in the timezone part. While in some locales (Russian one, for example) code was able to execute well, in another (English one) it was failing. Removing the last colon helped remedy my situation.

3

To compare date time, you can try this. Datetime format can be changed

from datetime import datetime

>>> a = datetime.strptime("10/12/2013", "%m/%d/%Y")
>>> b = datetime.strptime("10/15/2013", "%m/%d/%Y")
>>> a>b
False
2

I had the exact same error but with slightly different format and root-cause, and since this is the first Q&A that pops up when you search for "time data does not match format", I thought I'd leave the mistake I made for future viewers:

My initial code:

start = datetime.strptime('05-SEP-19 00.00.00.000 AM', '%d-%b-%y %I.%M.%S.%f %p')

Where I used %I to parse the hours and %p to parse 'AM/PM'.

The error:

ValueError: time data '05-SEP-19 00.00.00.000000 AM' does not match format '%d-%b-%y %I.%M.%S.%f %p'

I was going through the datetime docs and finally realized in 12-hour format %I, there is no 00... once I changed 00.00.00 to 12.00.00, the problem was resolved.

So it's either 01-12 using %I with %p, or 00-23 using %H.

2

I had a similar error -

time data '01-07-2020' does not match format '%d%m%Y' (match)

I didn't know that I have to use a hyphen in the format parameter. This worked for me -

df['Date'] = pd.to_datetime(df['Date'], format='%d-%m-%Y')
2

I also had the same error, time data '09/24/1997' does not match format '%m-%d-%Y'

If your date is using / then also use / in your format, for example

'09/24/1997' => '%m/%d/%Y' using dashes will give you that error.

1
Lets say we have datetime format string form with below format.  
 
2018-01-31T09:24:31.488670+00:00 

We can convert this given datetime str to datetime object

 

    Import datetime 
    
    DatetImeObj = datetime.datetime.strptime('2018-01-31T09:24:31.488670+00:00', '%Y-%m-%dT%H:%M:%S.%f%z') 

 

    This will return datetime format with result  
    2018-01-31 09:24:31.488670+00:00 
     
    Now if you want to convert this date time in any format you can use any datetime function 

 

    finalDateTime = Datetime.datetime.strftime(DatetImeObj , ‘%Y-%m-%d %H:%M’) 

    output -  2018-01-31 09:24
-4

You have to just remove "/" from the String and put "," in it .. Boom

See the following code:

import datetime as dt
str = '01,01,2017'
datetime_value = dt.datetime.strptime(str,'%d,%m,%Y')
print(datetime_value) # prints: 2017-01-01 00:00:00
1
  • 2
    Hello. Welcome to Stackoverflow. With your suggestion, you modify both the input string, and also the format to be parsed in the input string. As such, I believe it does not answer the question. Apr 17, 2021 at 10:49

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