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I had a question regarding how I should go about determining overlaps of three ranges in Python without using any existing libraries :

For instance if I have three ranges as (10,20)(15,25)(18,30), how should I go about finding overlaps between them ?

My answer should be (18,19,20)

Any help would be much appreciated. Thanks !

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3  
whathaveyoutried.com - And is this homework? - If not, why the restriction on libraries? If it is, you should add the homework tag. –  Lattyware May 25 '12 at 21:59
1  
Also, what do you mean by those given ranges? A range object in Python (range(10, 20)) goes to less than the second value, not including, so the expected output would be (18, 19). –  Lattyware May 25 '12 at 22:01
    
Duplicate –  Steve May 25 '12 at 22:12
    
@Steve Not a duplicate, that question asks for specifically two ranges, while this question asks for three. While it's easy to extrapolate out, it's not a duplicate. Obviously, a general answer (as given here) is a better option. –  Lattyware May 25 '12 at 22:14

2 Answers 2

The overlap goes from the highest start point to the lowest end point:

ranges = [(10,20), (15,25), (18,30)]
starts, ends = zip(*ranges)
result = range(max(starts), min(ends) + 1)

Test:

>>> print(*result)
18 19 20
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Thanks a lot. However, I have many such ranges (about a million of them). i.e there are 3 ranges, but there are about million such comparisons to make. Could you tell me a computationally fast method of comparing million such ranges. –  user1418321 May 28 '12 at 0:06
    
It takes about 2 seconds on my PC. Unless you are actually creating the ranges as lists (using Python 2.x and not using xrange, for example) and the results are huge this will be fast. If you have to create the actual lists and they are huge, no method will help. –  WolframH May 28 '12 at 13:22

While WolframH's answer is the best answer for this case, a more general solution for finding overlaps is available, given you don't need to worry about repeated elements, which is to use sets and their intersection operation.

>>> set(range(10, 21)) & set(range(15, 26)) & set(range(18, 31))
{18, 19, 20}

Or, as a more general solution:

ranges = [(10, 20), (15, 25), (18, 30)]
set.intersection(*(set(range(start, finish+1)) for start, finish in ranges))
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1  
Nice, and you don't even need reduce: set.intersection(*(set(range(start, finish+1)) for start, finish in ranges)). –  WolframH May 26 '12 at 11:43
    
@WolframH Nice, I did not know that set.intersection() accepted multiple sets, that's awesome. I always feel dirty whenever I have to resort to reduce(). Edited. –  Lattyware May 26 '12 at 11:46

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