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Sure I could write this myself, but before I go reinventing the wheel is there a function that already does this?

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9  
Question VERY warranted even though the early answers seem a tad dismissive ("just a matter of", "seems pretty simple"): two of the answers (including an UPVOTED one!) are horribly buggy, showing it's NOT all that simple or "just"... – Alex Martelli Sep 10 '09 at 16:07
    
I'm sure he'll come back and fix this – Nadia Alramli Sep 10 '09 at 16:13
up vote 80 down vote accepted

Given an instance x of datetime.date, (x.month-1)//3 will give you the quarter (0 for first quarter, 1 for second quarter, etc -- add 1 if you need to count from 1 instead;-).

Edit: originally two answers, multiply upvoted and even originally ACCEPTED (both currently deleted), were buggy -- not doing the -1 before the division, and dividing by 4 instead of 3. Since .month goes 1 to 12, it's easy to check for yourself what formula is right:

for m in range(1, 13):
  print m//4 + 1,
print

gives 1 1 1 2 2 2 2 3 3 3 3 4 -- two four-month quarters and a single-month one (eep).

for m in range(1, 13):
  print (m-1)//3 + 1,
print

gives 1 1 1 2 2 2 3 3 3 4 4 4 -- now doesn't this look vastly preferable to you?-)

This proves that the question is well warranted, I think;-). I don't think the datetime module should necessarily have every possible useful calendric function, but I do know I maintain a (well-tested;-) datetools module for the use of my (and others') projects at work, which has many little functions to perform all of these calendric computations -- some are complex, some simple, but there's no reason to do the work over and over (even simple work) or risk bugs in such computations;-).

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1  
+1, you are right – Nadia Alramli Sep 10 '09 at 16:09
1  
people are in a hurry at times to get that 2+ when you accept an answer – Perpetualcoder Sep 10 '09 at 16:11
1  
Thanks Alex. This is why there should be a function. Look how many people got it wrong. – Jason Christa Sep 10 '09 at 16:14
    
I think you proved your point. It's unnecessary to pollute the entire page with repeated comments. – João Silva Sep 10 '09 at 16:17
1  
@Jason, yes, exactly -- that's why I upvoted your question once I saw the other buggy answers (currently deleted), even though somebody else seem to have downvoted to counted my upvote, ah well. – Alex Martelli Sep 10 '09 at 16:17

I would suggest another arguably cleaner solution. If X is a datetime.datetime.now() instance, then the quarter is:

import math
Q=math.ceil(X.month/3.)

ceil has to be imported from math module as it can't be accessed directly.

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The best one so far. Thanks a ton! – curlyreggie Oct 15 '13 at 6:24
1  
Probably should wrap this in an int() – Pablojim Feb 26 '15 at 9:54

This is an old question but still worthy of discussion.

Here is my solution, using the excellent dateutil module.

  from dateutil import rrule,relativedelta

   year = this_date.year
   quarters = rrule.rrule(rrule.MONTHLY,
                      bymonth=(1,4,7,10),
                      bysetpos=-1,
                      dtstart=datetime.datetime(year,1,1),
                      count=8)

   first_day = quarters.before(this_date)
   last_day =  (quarters.after(this_date)
                -relativedelta.relativedelta(days=1)

So first_day is the first day of the quarter, and last_day is the last day of the quarter (calculated by finding the first day of the next quarter, minus one day).

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IF you are already using pandas, it's quite simple.

import datetime as dt
import pandas as pd

quarter = pd.Timestamp(dt.date(2016, 2, 29)).quarter
assert quarter == 1

If you have a date column in a dataframe, you can easily create a new quarter column:

df['quarter'] = df['date'].dt.quarter
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hmmm so calculations can go wrong, here is a better version (just for the sake of it)

first, second, third, fourth=1,2,3,4# you can make strings if you wish :)

quarterMap = {}
quarterMap.update(dict(zip((1,2,3),(first,)*3)))
quarterMap.update(dict(zip((4,5,6),(second,)*3)))
quarterMap.update(dict(zip((7,8,9),(third,)*3)))
quarterMap.update(dict(zip((10,11,12),(fourth,)*3)))

print quarterMap[6]
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2  
calculations can only go wrong if the math is wrong. – Russ Bradberry Apr 23 '13 at 18:48
    
@RussBradberry in this case may be you right, but sometimes readability and being explicit counts and leads to less errors, instead of a terse calculation – Anurag Uniyal Apr 24 '13 at 1:00
1  
@RussBradberry also see deleted answers and comments on that, see a simple calculation can be tricky for good programmers too and it is difficult to see correctness except by testing it, in my solution you can see and be sure that it will work – Anurag Uniyal Apr 24 '13 at 1:02
1  
just as you said "it is difficult to see correctness except by testing it". You should be writing tests, as all good developers should. Tests are what help to keep you from making mistakes, and catch the ones you do. A developer should never sacrifice performance and readability, to prevent themselves from making a mistake. Also, this is less readable than if you would just made a static dict using literals. – Russ Bradberry Apr 24 '13 at 13:26
    
don't get me wrong (m-1)//3 + 1 is not all that readable either, not many people know what // does. My original comment was just on the statement of "calculations can go wrong" which just sounds odd to me. – Russ Bradberry Apr 24 '13 at 13:29

if m is the month number...

import math
math.ceil(float(m) / 3)
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