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Suppose I have list of time interval like

a = [datetime.time(0,0),datetime.time(8,0)]

Now I Have lacs of intervals in list like given below.

b = [[datetime.time(0,0),datetime.time(8,0)], [datetime.time(0,0),datetime.time(10,0)], [datetime.time(0,0),datetime.time(23,59,59)], [datetime.time(15,0),datetime.time(9,0)], [datetime.time(9,0),datetime.time(15,0)]]

We have to filter list b with intervals containing interval a. like in example result will be.

b = [[datetime.time(0,0),datetime.time(8,0)], [datetime.time(0,0),datetime.time(10,0)], [datetime.time(0,0),datetime.time(23,59,59)], [datetime.time(15,0),datetime.time(9,0)]]

Note: I have changed end time from 00 to 23:59:59 but the case remain persistent as we need to understand that daily interval of 00:00 to 08:00 is contained in interval of 15:00 to 09:00

Hint: I have divided 15:00 to 09:00 into two intervals: 00:00-09:00 and 15:00-23:59:59

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2  
What's the question? –  sean Sep 12 '12 at 14:41
    
You mean filter b's element such that a is completely contained in the element? –  Bakuriu Sep 12 '12 at 14:50
    
No, I think what he means is he has a bunch of (start_datetime, duration) pairs and he wants to filter by overlapping time spans. –  Mu Mind Sep 12 '12 at 14:52
    
Not sure why he's using datetime.time instead of datetime.timedelta though. Guessing it's an oversight. –  Mu Mind Sep 12 '12 at 14:53
1  
I don't understand your example result: how does [datetime.time(0,0),datetime.time(0,0)] contain a? –  Evert Sep 12 '12 at 15:16

1 Answer 1

up vote 1 down vote accepted

Your code has errors (usage of datetime/datetime.time).

This code will filter out from b everything, that does not overlap with a:

b = [x for x in b if a[0] < x[1] and x[0] < a[1]]
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One or both of those should probably be <=, I'd think. –  Mu Mind Sep 12 '12 at 14:53
2  
Does this cover the case in which you have a = [datetime.time(15,0), datetime.time(9,0)], which should mean from 3 pm to 9 am of the next day?[at least, the OP has something like this in the example code] I don't think so. Probably you should first check whether a[0] < a[1] or the opposite and to the filtering accordingly. –  Bakuriu Sep 12 '12 at 15:37
    
yes even if your answer was incomplete but did a trick. –  sharafjaffri Sep 13 '12 at 11:21

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