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.

I need to check if some number of years have been since some date. Currently I've got timedelta from datetime module and I don't know how to convert it to years.

share|improve this question
add comment

14 Answers

up vote 50 down vote accepted

You need more than a timedelta to tell how many years have passed; you also need to know the beginning (or ending) date. (It's a leap year thing.)

Your best bet is to use the dateutil.relativedelta object, but that's a 3rd party module. If you want to know the datetime that was n years from some date (defaulting to right now), you can do the following::

from dateutil.relativedelta import relativedelta

def yearsago(years, from_date=None):
    if from_date is None:
        from_date = datetime.now()
    return from_date - relativedelta(years=years)

If you'd rather stick with the standard library, the answer is a little more complex::

from datetime import datetime
def yearsago(years, from_date=None):
    if from_date is None:
        from_date = datetime.now()
    try:
        return from_date.replace(year=from_date.year - years)
    except:
        # Must be 2/29!
        assert from_date.month == 2 and from_date.day == 29 # can be removed
        return from_date.replace(month=2, day=28,
                                 year=from_date.year-years)

If it's 2/29, and 18 years ago there was no 2/29, this function will return 2/28. If you'd rather return 3/1, just change the last return statement to read::

    return from_date.replace(month=3, day=1,
                             year=from_date.year-years)

Your question originally said you wanted to know how many years it's been since some date. Assuming you want an integer number of years, you can guess based on 365.25 days per year and then check using either of the yearsago functions defined above::

def num_years(begin, end=None):
    if end is None:
        end = datetime.now()
    num_years = int((end - begin).days / 365.25)
    if begin > yearsago(num_years, end):
        return num_years - 1
    else:
        return num_years
share|improve this answer
7  
You can be fully accurate with 365.2425 (instead of 365.25), which takes the 400 year exception into account for the Gregorian calendar. –  brianary Dec 24 '09 at 21:09
    
+1 for the excellent python-dateutil library! –  hwjp Jan 15 '12 at 15:03
    
Your function legally breaks for countries such as the UK and Hong Kong, because they "round up" to the 1st of March for leap years. –  antihero Sep 4 '13 at 14:02
add comment

If you're trying to check if someone is 18 years of age, using timedelta will not work correctly on some edge cases because of leap years. For example, someone born on January 1, 2000, will turn 18 exactly 6575 days later on January 1, 2018 (5 leap years included), but someone born on January 1, 2001, will turn 18 exactly 6574 days later on January 1, 2019 (4 leap years included). Thus, you if someone is exactly 6574 days old, you can't determine if they are 17 or 18 without knowing a little more information about their birthdate.

The correct way to do this is to calculate the age directly from the dates, by subtracting the two years, and then subtracting one if the current month/day precedes the birth month/day.

share|improve this answer
add comment

First off, at the most detailed level, the problem can't be solved exactly. Years vary in length, and there isn't a clear "right choice" for year length.

That said, get the difference in whatever units are "natural" (probably seconds) and divide by the ratio between that and years. E.g.

delta_in_days / (365.25)
delta_in_seconds / (365.25*24*60*60)

...or whatever. Stay away from months, since they are even less well defined than years.

share|improve this answer
1  
That is NOT what anybody means or uses when it's a question of how many years service or has a person attained a particular age. –  John Machin Nov 30 '09 at 11:57
1  
Your 365.25 should be 365.2425 to take the 400 year exception of the Gregorian calendar into account. –  brianary Dec 24 '09 at 21:11
    
Well, the problem can be solved correctly - you can tell ahead of time which years have leap days and leap seconds and all that. It's just that there's no extremely elegant way of doing it without subtracting the years, then the months, then the days, etc... in the two formatted dates –  Litherum Jan 14 '11 at 19:00
add comment

Here's a updated DOB function, which calculates birthdays the same way humans do:

import datetime
import locale


# Source: https://en.wikipedia.org/wiki/February_29
PRE = [
    'US',
    'TW',
]
POST = [
    'GB',
    'HK',
]


def get_country():
    code, _ = locale.getlocale()
    try:
        return code.split('_')[1]
    except IndexError:
        raise Exception('Country cannot be ascertained from locale.')


def get_leap_birthday(year):
    country = get_country()
    if country in PRE:
        return datetime.date(year, 2, 28)
    elif country in POST:
        return datetime.date(year, 3, 1)
    else:
        raise Exception('It is unknown whether your country treats leap year '
                      + 'birthdays as being on the 28th of February or '
                      + 'the 1st of March. Please consult your country\'s '
                      + 'legal code for in order to ascertain an answer.')
def age(dob):
    today = datetime.date.today()
    years = today.year - dob.year

    try:
        birthday = datetime.date(today.year, dob.month, dob.day)
    except ValueError as e:
        if dob.month == 2 and dob.day == 29:
            birthday = get_leap_birthday(today.year)
        else:
            raise e

    if today < birthday:
        years -= 1
    return years

print(age(datetime.date(1988, 2, 29)))
share|improve this answer
    
This breaks when dob is Feb. 29 and the current year is not a leap year. –  Trey Hunner Mar 10 '13 at 3:26
add comment

How exact do you need it to be? td.days / 365.25 will get you pretty close, if you're worried about leap years.

share|improve this answer
    
I'm really worried about leap years. It should check if person is over 18 years old. –  Migol Apr 19 '09 at 18:08
    
Then there's no easy one-liner, you're going to have to parse the two dates and figured out if the person has passed their 18th birthday or not. –  eduffy Apr 19 '09 at 18:13
add comment

Even though this thread is already dead, might i suggest a working solution for this very same problem i was facing. Here it is (date is a string in the format dd-mm-yyyy):

def validatedate(date):
    parts = date.strip().split('-')

    if len(parts) == 3 and False not in [x.isdigit() for x in parts]: 
        birth = datetime.date(int(parts[2]), int(parts[1]), int(parts[0]))
        today = datetime.date.today()

        b = (birth.year * 10000) + (birth.month * 100) + (birth.day)
        t = (today.year * 10000) + (today.month * 100) + (today.day)

        if (t - 18 * 10000) >= b:
            return True

    return False
share|improve this answer
add comment

this function returns the difference in years between two dates (taken as strings in ISO format, but it can easily modified to take in any format)

import time
def years(earlydateiso,  laterdateiso):
    """difference in years between two dates in ISO format"""

    ed =  time.strptime(earlydateiso, "%Y-%m-%d")
    ld =  time.strptime(laterdateiso, "%Y-%m-%d")
    #switch dates if needed
    if  ld < ed:
        ld,  ed = ed,  ld            

    res = ld[0] - ed [0]
    if res > 0:
        if ld[1]< ed[1]:
            res -= 1
        elif  ld[1] == ed[1]:
            if ld[2]< ed[2]:
                res -= 1
    return res
share|improve this answer
add comment
def age(dob):
    import datetime
    today = datetime.date.today()

    if today.month < dob.month or \
      (today.month == dob.month and today.day < dob.day):
        return today.year - dob.year - 1
    else:
        return today.year - dob.year

>>> import datetime
>>> datetime.date.today()
datetime.date(2009, 12, 1)
>>> age(datetime.date(2008, 11, 30))
1
>>> age(datetime.date(2008, 12, 1))
1
>>> age(datetime.date(2008, 12, 2))
0
share|improve this answer
    
A person born on 29 February will be treated as having attained age 1 on the following 28 February. –  John Machin Nov 30 '09 at 12:09
    
Ok. Corrected to accommodate the 0.08% of the population born on the 29th by inverting the test from "is birthday after today" to "is birthday before today". Does that solve it? –  John Mee Dec 1 '09 at 4:35
    
No, it doesn't solve it. Don't you believe in testing? –  John Machin Feb 7 '10 at 22:41
    
It does work correctly for your example!?! If I set "today" to 28th February 2009, and the date-of-birth to 29th February 2008 it returns Zero- at least for me; not 1 as you suggest (Python 2.5.2). There's no need to rude Mr Machin. Exactly what two dates are you having trouble with? –  John Mee Feb 8 '10 at 6:16
2  
Sigh. (0) Addressing 29 February issues is essential in any date arithmetic; you just ignored it. (1) Your code wasn't better off first time; what don't you understand in "produce EXACTLY the same output"? (2) Three possible atomic results (<, ==, >) comparing today.month and dob.month; three possible atomic results comparing today.day and dob.day; 3 * 3 == 9 (3) stackoverflow.com/questions/2217488/… –  John Machin Feb 8 '10 at 23:54
show 2 more comments

I'll suggest Pyfdate

What is pyfdate?

Given Python's goal to be a powerful and easy-to-use scripting language, its features for working with dates and times are not as user-friendly as they should be. The purpose of pyfdate is to remedy that situation by providing features for working with dates and times that are as powerful and easy-to-use as the rest of Python.

the tutorial

share|improve this answer
add comment

Yet another 3rd party lib not mentioned here is mxDateTime (predecessor of both python datetime and 3rd party timeutil) could be used for this task.

The aforementioned yearsago would be:

from mx.DateTime import now, RelativeDateTime

def years_ago(years, from_date=None):
    if from_date == None:
        from_date = now()
    return from_date-RelativeDateTime(years=years)

First parameter is expected to be a DateTime instance.

To convert ordinary datetime to DateTime you could use this for 1 second precision):

def DT_from_dt_s(t):
    return DT.DateTimeFromTicks(time.mktime(t.timetuple()))

or this for 1 microsecond precision:

def DT_from_dt_u(t):
    return DT.DateTime(t.year, t.month, t.day, t.hour,
  t.minute, t.second + t.microsecond * 1e-6)

And yes, adding the dependency for this single task in question would definitely be an overkill compared even with using timeutil (suggested by Rick Copeland).

share|improve this answer
add comment

Get the number of days, then divide by 365.2425 (the mean Gregorian year) for years. Divide by 30.436875 (the mean Gregorian month) for months.

share|improve this answer
add comment

In the end what you have is a maths issue. If every 4 years we have an extra day lets then dived the timedelta in days, not by 365 but 365*4 + 1, that would give you the amount of 4 years. Then divide it again by 4. timedelta / ((365*4) +1) / 4 = timedelta * 4 / (365*4 +1)

share|improve this answer
    
The leap year thing does not apply when the years are divisible by 100, except when they are divisible by 400. So, for year 2000: - it is divisible by four, so it should be leap but... - it is also divisible by a hundred, so it should not be leap but... - it is divisible by 400, so it was actually a leap year. For 1900: - it is divisible by 4 so it should be leap. - it is divisible by 100, so it should not be leap. - it is NOT divisible by 400, so this rule does not apply. 1900 was not a leap year. –  Jblasco Sep 24 '13 at 10:44
add comment

This is the solution I worked out, I hope can help ;-)

def menor_edad_legal(birthday):
    """ returns true if aged<18 in days """ 
    try:

        today = time.localtime()                        

        fa_divuit_anys=date(year=today.tm_year-18, month=today.tm_mon, day=today.tm_mday)

        if birthday>fa_divuit_anys:
            return True
        else:
            return False            

    except Exception, ex_edad:
        logging.error('Error menor de edad: %s' % ex_edad)
        return True
share|improve this answer
add comment

Well, question seems rather easy. You need to check the number of 'full' years, and only if it's equal to 18 you need to bother with months and days. The edge case is: endDate.year - startDate.year == 18 and it splits to two cases: startDate.month != endDate.month and startDate.month == endDate.month, when you just have to check days:

 def isOfAge(birthDate, age=18):
     endDate = date.today()
     years = endDate.year - birthDate.year
     if years == age:
         return (birthDate.month < endDate.month or 
                  (birthDate.month == endDate.month and birthDate.day < endDate.day))         
     return years > age

It's still more than one-liner-lambda, but it's still pretty short, and seems quick in execution.

share|improve this answer
add comment

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.