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Can i borrow someone's brain for this issue. I have got data and their relevant timestamps. I am interested in grouping them by 5min frequency however i can only start the grouping on 00:00 format. I mean 13:23:27 (hours) would need to be group with 13:25:00 data and then it will be 13:30:00, 13:35:00 etc

Do you know how i can distinguish this rounding? At the moment i am able to group by 5min but it starts from the first timestamp which could be 13:18:47 so the next one is giving me is 13:24:00 which is wrong as per my definition i would like to see 13:20:00

Hope that make sense...

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Sort of makes sense, but if you posted your code it would make more sense. –  Emilio M Bumachar Apr 3 '13 at 17:49
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3 Answers 3

up vote 0 down vote accepted

Try Rounding off your time to the nearest 300 seconds. you can use an inbuilt function of rounding off the integer. You can also try use this algorithm:

    function round(int timestamp){
        int N = timestamp;                  //The time in time stamp
        int RN;                 //The rounded off time stamp -- wch is our answer
        int n = 300;            //5 min interval in seconds
        int r = N%n;            //The remainder
        int x=N/n;              //the whole number we get after dividing

        if(r/n < 0.5){
            RN = x * n;
        }
        else{
            RN = (x * n)+5;
        }

        return RN;
    }

Hope it works, all the best

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This is way more complicated than necessary, and nor is it python. –  forivall Apr 4 '13 at 17:29
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Convert to seconds, divide by 300 and use the integer portion as your grouping.

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itertools.groupby will help too. –  forivall Apr 3 '13 at 17:53
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times = [<a list of datetimes>]
timegroups = [list(group) for (key, group) in
              itertools.groupby(times, lambda t:(t.hour, t.minute // 5))]

Things to note:

  • Make sure you import itertools.
  • // is floor division (even though SO's syntax highlighter thinks it's a comment)
  • itertools.groupby will return an iterator that depends on the original iterator, with which you can loop over if needed. I converted it to a list so you can easily see what the results are.
  • groupby will also expect a sorted list
  • If you need more resolution in your grouping, just modify the tuple returned by the lambda

The key here is the floor division of the minutes by 5 -- this is what will achieve the grouping you're looking for; that single statement is all the logic you need.

Edit:

In order to do what the (currently) accepted question is doing, this is the change needed:

rounding_delta = datetime.timedelta(seconds=150)
def key_func(val):
    t = val + rounding_delta
    return (t.hour, t.minute // 5)
timegroups = [list(group) for (key, group) in
              itertools.groupby(times, key_func)]
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You cannot convert groupby() results to a list and expect the underlying per-group iterators to still work. Each iteration returns key, group, with group being an iterator yielding values from times, but if you go to the next group without consuming those, you cannot get them at a later time. –  Martijn Pieters Apr 3 '13 at 18:12
    
Thanks for catching that. I wasn't really thinking. Fixed. –  forivall Apr 3 '13 at 18:31
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