Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Can anyone explain the best way to format a date time string in Python where the date value is prior to the year 1900? strftime requires dates later than 1900.

share|improve this question

3 Answers 3

The babel internationalization library seems to have no problems with it. See the docs for babel.dates

share|improve this answer
    
except that you need to use non-standard specifiers –  SilentGhost Oct 6 '09 at 17:15
    
so why is that a problem? there are docs –  Ned Deily Oct 6 '09 at 17:22
    
because they're multiplying entities w/o need –  SilentGhost Oct 6 '09 at 17:29
    
As opposed to re-inventing code w/o need?? There's always a tradeoff. Or perhaps I don't understand your point. –  Ned Deily Oct 6 '09 at 17:34

The calendar is exactly the same every 400 years. Therefore it is sufficient to change year by multiple of 400 such as year >= 1900 before calling datetime.strftime().

The code shows what problems such approach has:

#/usr/bin/env python2.6
import re
import warnings
from datetime import datetime


def strftime(datetime_, format, force=False):
    """`strftime()` that works for year < 1900.

    Disregard calendars shifts.

    >>> def f(fmt, force=False):
    ...     return strftime(datetime(1895, 10, 6, 11, 1, 2), fmt, force)
    >>> f('abc %Y %m %D') 
    'abc 1895 10 10/06/95'
    >>> f('%X')
    '11:01:02'
    >>> f('%c') #doctest:+NORMALIZE_WHITESPACE
    Traceback (most recent call last):
    ValueError: '%c', '%x' produce unreliable results for year < 1900
    use force=True to override
    >>> f('%c', force=True)
    'Sun Oct  6 11:01:02 1895'
    >>> f('%x') #doctest:+NORMALIZE_WHITESPACE
    Traceback (most recent call last):
    ValueError: '%c', '%x' produce unreliable results for year < 1900
    use force=True to override
    >>> f('%x', force=True)
    '10/06/95'
    >>> f('%%x %%Y %Y')
    '%x %Y 1895'
    """
    year = datetime_.year
    if year >= 1900:
       return datetime_.strftime(format)

    # make year larger then 1900 using 400 increment
    assert year < 1900
    factor = (1900 - year - 1) // 400 + 1
    future_year = year + factor * 400
    assert future_year > 1900

    format = Specifier('%Y').replace_in(format, year)
    result = datetime_.replace(year=future_year).strftime(format)
    if any(f.ispresent_in(format) for f in map(Specifier, ['%c', '%x'])):
        msg = "'%c', '%x' produce unreliable results for year < 1900"
        if not force:
            raise ValueError(msg + " use force=True to override")
        warnings.warn(msg)
        result = result.replace(str(future_year), str(year))
    assert (future_year % 100) == (year % 100) # last two digits are the same
    return result


class Specifier(str):
    """Model %Y and such in `strftime`'s format string."""
    def __new__(cls, *args):
        self = super(Specifier, cls).__new__(cls, *args)
        assert self.startswith('%')
        assert len(self) == 2
        self._regex = re.compile(r'(%*{0})'.format(str(self)))
        return self

    def ispresent_in(self, format):
        m = self._regex.search(format)
        return m and m.group(1).count('%') & 1 # odd number of '%'

    def replace_in(self, format, by):
        def repl(m):
            n = m.group(1).count('%')
            if n & 1: # odd number of '%'
                prefix = '%'*(n-1) if n > 0 else ''
                return prefix + str(by) # replace format
            else:
                return m.group(0) # leave unchanged
        return self._regex.sub(repl, format)


if __name__=="__main__":
    import doctest; doctest.testmod()
share|improve this answer

It's a bit cumbersome, but it works (at least in stable versions of python):

>>> ts = datetime.datetime(1895, 10, 6, 16, 4, 5)
>>> '{0.year}-{0.month:{1}}-{0.day:{1}} {0.hour:{1}}:{0.minute:{1}}'.format(ts, '02')
'1895-10-06 16:04'

note that str would still produce a readable string:

>>> str(ts)
'1895-10-06 16:04:05'

edit
The closest possible way to emulate the default behaviour is to hard-code the dictionary such as:

>>> d = {'%Y': '{0.year}', '%m': '{0.month:02}'}    # need to include all the formats
>>> '{%Y}-{%m}'.format(**d).format(ts)
'1895-10'

You'll need to enclose all format specifiers into the curly braces with the simple regex:

>>> re.sub('(%\w)', r'{\1}', '%Y-%m-%d %H sdf')
'{%Y}-{%m}-{%d} {%H} sdf'

and at the end we come to simple code:

def ancient_fmt(ts, fmt):
    fmt = fmt.replace('%%', '%')
    fmt = re.sub('(%\w)', r'{\1}', fmt)
    return fmt.format(**d).format(ts)

def main(ts, format):
    if ts.year < 1900:
        return ancient_format(ts, fmt)
    else:
        return ts.strftime(fmt)

where d is a global dictionary with keys corresponding to some specifiers in strftime table.

edit 2
To clarify: this approach will work only for the following specifiers: %Y, %m, %d, %H, %M, %S, %f, i.e., those that are numeric, if you need textual information, you'd better off with babel or any other solution.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.