12

I have strings that show a date in the following format:

x minutes/hours/days/months/years ago

I need to parse that to a datetime using python.

It seems dateutil can't do it.

Is there a way to do it?

  • 1
    It looks like dateutil can handle it in the format that Lattyware and I prescribed, just substituting dateutil.relativedelta for datetime.timedelta. (see my update and link). – mgilson Sep 24 '12 at 13:56
9

Sure you can do it. You just need a timedelta.

s = "3 days ago"
parsed_s = [s.split()[:2]]
time_dict = dict((fmt,float(amount)) for amount,fmt in parsed_s)
dt = datetime.timedelta(**time_dict)
past_time = datetime.datetime.now() - dt

As an aside, it looks like dateutil has a relativedelta which acts like a timedelta, but the constructor also accepts months and years in the arguments (and apparently the arguments need to be integers).

  • relativedelta works better, it doesn't work with a float though, it needs amount to be an int. – applechief Sep 24 '12 at 14:06
  • @chaft -- Thanks. I suppose that makes sense. While it's concievable that you can come up with a definition for 3 months ago, it's probably not concievable to say 3.5 months ago and have a unique date. – mgilson Sep 24 '12 at 14:09
6

This can be done easily with timedeltas:

import datetime

def string_to_delta(string_delta):
    value, unit, _ = string_delta.split()
    return datetime.timedelta(**{unit: float(value)})

Producing:

>>> string_to_delta("20 hours ago")
datetime.timedelta(0, 72000)

Although this will require some extra work to deal with months/years - as adding a month to a date is an ambiguous operation, but it should be a simple addition if you know what you want it to mean.

To get an actual time, simply take the delta away from datetime.datetime.now().

  • Your splitting is a bit more elegant than mine. +1. (although I would use float(n) -- timedelta seems to handle it OK and it would allow use of 3.5 days ago.). – mgilson Sep 24 '12 at 13:42
  • @mgilson: Thanks for the suggestion - didn't know timedeltas handled floats. – Gareth Latty Sep 24 '12 at 13:43
  • I had to try it to see -- Pretty cool :). – mgilson Sep 24 '12 at 13:43
  • @chaft Afraid not - timedeltas don't handle months or years as it's relatively ambiguous as to what adding a month to a date means. You will need to handle those as a special case. – Gareth Latty Sep 24 '12 at 13:49
  • Thanks, it works for minutes hours and days but fails on months and years. – applechief Sep 24 '12 at 13:49
4

Since your arguments are something like 2 days ago, 3 months ago, 2 years ago. The function below could be of help in getting the exact date for the arguments. You first need to import the following date utils

import datetime
from dateutil.relativedelta import relativedelta

Then implement the function below

def get_past_date(str_days_ago):
    TODAY = datetime.date.today()
    splitted = str_days_ago.split()
    if len(splitted) == 1 and splitted[0].lower() == 'today':
        return str(TODAY.isoformat())
    elif len(splitted) == 1 and splitted[0].lower() == 'yesterday':
        date = TODAY - relativedelta(days=1)
        return str(date.isoformat())
    elif splitted[1].lower() in ['hour', 'hours', 'hr', 'hrs', 'h']:
        date = datetime.datetime.now() - relativedelta(hours=int(splitted[0]))
        return str(date.date().isoformat())
    elif splitted[1].lower() in ['day', 'days', 'd']:
        date = TODAY - relativedelta(days=int(splitted[0]))
        return str(date.isoformat())
    elif splitted[1].lower() in ['wk', 'wks', 'week', 'weeks', 'w']:
        date = TODAY - relativedelta(weeks=int(splitted[0]))
        return str(date.isoformat())
    elif splitted[1].lower() in ['mon', 'mons', 'month', 'months', 'm']:
        date = TODAY - relativedelta(months=int(splitted[0]))
        return str(date.isoformat())
    elif splitted[1].lower() in ['yrs', 'yr', 'years', 'year', 'y']:
        date = TODAY - relativedelta(years=int(splitted[0]))
        return str(date.isoformat())
    else:
        return "Wrong Argument format"

You can then call the function like this:

print get_past_date('5 hours ago')
print get_past_date('yesterday')
print get_past_date('3 days ago')
print get_past_date('4 months ago')
print get_past_date('2 years ago')
print get_past_date('today')
1

completely exaggerated solution but I needed something more flexible:

def string_to_delta(relative):
    #using simplistic year (no leap months are 30 days long.
    #WARNING: 12 months != 1 year
    unit_mapping = [('mic', 'microseconds', 1),
                    ('millis', 'microseconds', 1000),
                    ('sec', 'seconds', 1),
                    ('day', 'days', 1),
                    ('week', 'days', 7),
                    ('mon', 'days', 30),
                    ('year', 'days', 365)]
    try:
        tokens = relative.lower().split(' ')
        past = False
        if tokens[-1] == 'ago':
            past = True
            tokens =  tokens[:-1]
        elif tokens[0] == 'in':
            tokens = tokens[1:]


        units = dict(days = 0, seconds = 0, microseconds = 0)
        #we should always get pairs, if not we let this die and throw an exception
        while len(tokens) > 0:
            value = tokens.pop(0)
            if value == 'and':    #just skip this token
                continue
            else:
                value = float(value)

            unit = tokens.pop(0)
            for match, time_unit, time_constant in unit_mapping:
                if unit.startswith(match):
                    units[time_unit] += value * time_constant
        return datetime.timedelta(**units), past

    except Exception as e:
        raise ValueError("Don't know how to parse %s: %s" % (relative, e))

This can parse things like:

  • 2 days ago
  • in 60 seconds
  • 2 DAY and 4 Secs
  • in 1 year, 1 Month, 2 days and 4 MICRO
  • 2 Weeks 4 secs ago
  • 7 millis ago

A huge but: It simplifies month and year to 30 and 365 days respectively. Not always what you want, though it's enough for some cases.

0

Custom function to convert x hours ago to datetime, x hour, y mins ago to datetime, etc in Python.

Function takes single parameter of type string which is parsed using RegExp. RegExp can be customized to match function input.

For usage see examples below.

import re
from datetime import datetime, timedelta


def convert_datetime(datetime_ago):
    matches = re.search(r"(\d+ weeks?,? )?(\d+ days?,? )?(\d+ hours?,? )?(\d+ mins?,? )?(\d+ secs? )?ago", datetime_ago)

    if not matches:
        return None

    date_pieces = {'week': 0, 'day': 0, 'hour': 0, 'min': 0, 'sec': 0}

    for i in range(1, len(date_pieces) + 1):
        if matches.group(i):
            value_unit = matches.group(i).rstrip(', ')
            if len(value_unit.split()) == 2:
                value, unit = value_unit.split()
                date_pieces[unit.rstrip('s')] = int(value)

    d = datetime.today() - timedelta(
        weeks=date_pieces['week'],
        days=date_pieces['day'],
        hours=date_pieces['hour'],
        minutes=date_pieces['min'],
        seconds=date_pieces['sec']
    )

    return d

Example usage:

dates = [
    '1 week, 6 days, 11 hours, 20 mins, 13 secs ago',
    '1 week, 10 hours ago',
    '1 week, 1 day ago',
    '6 days, 11 hours, 20 mins ago',
    '1 hour ago',
    '11 hours, 20 mins ago',
    '20 mins 10 secs ago',
    '10 secs ago',
    '1 sec ago',
]    

for date in dates:
    print(convert_datetime(date))

Output:

2019-05-10 06:26:40.937027
2019-05-16 07:46:53.937027
2019-05-15 17:46:53.937027
2019-05-17 06:26:53.937027
2019-05-23 16:46:53.937027
2019-05-23 06:26:53.937027
2019-05-23 17:26:43.937027
2019-05-23 17:46:43.937027
2019-05-23 17:46:52.937027

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