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I have the following scenario: I am given two (previously) sorted sequences of numbers and I need to merge them using a merging network (such as batcher's However, these networks are designed to work for sequences of 2^k size, which is not my case.

Can anyone suggest a way to do that? Ideally one that doesn't involve forcing the list to be of some size that is a multiple of 2 (such as by appending zeroes to the beginning for instance).

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Why you don't like append something to your list? it's not time consuming job. – Saeed Amiri Feb 23 '12 at 20:32
I'm dealing with extremely large sequences and I have limited memory. So... say N (my total number of items) is not a power of 2 (assume it is 2^(t)-1 to account for the worst case scenario), I will have to add 2^t+1 elements to my list, which is potentially a very large number. – Everaldo Aguiar Feb 23 '12 at 21:49
if it is 2^(t)-1 you should add one number, but in all you should add at most two time number (Also you can do not add it and treat with out of range numbers as very big number) So make it two time slower in initialization is not bad. – Saeed Amiri Feb 24 '12 at 9:06

3 Answers 3

Your input array is of size x and if it's not in the format of 2t it will be as: 2t< x<2t+1, so you can add 2t+1 - x elements with max value to your input (makes it as most twice) and then apply one of a common network for sorting. and finally remove last 2t+1 - x elements from your result.

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I think you have two choices but i could be wrong:

  1. Fill with -99999 or 99999 and in your end result ignore the tail of 99999's.

  2. Fill with nulls, and in each comparison allow null to lose in a try catch exception statement. Depending on your language you may still need to strip the tail of nulls from your data structure.


There is a way to do it without using fill values, but it requires multiple merging. E.g. merge a subset of the two lists, then take some of these numbers and mix them with the numbers you left out the first time, and then merge two lists again, then merge the top halfs and the bottom halfs .. type thing.. kinda messy.

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Thanks! That's quite similar to what the previous person proposed. But as I mentioned in a comment above, the reason why I'm avoiding adding new elements is because I may (potentially) have to add a very large number of items and I don't have the memory for that. – Everaldo Aguiar Feb 23 '12 at 21:52
You will only run out of memory if you are currently using over half your memory which seems unlikely.. I suppose I have another answer for you which I will post soon. – robert king Feb 23 '12 at 22:18
Thanks for putting some thought into it. The setting in which I'm working is actually a bit more complicated to explain but the simplified version of it is "I must avoid adding new items" :) After reading some more, I'm almost convinced that it is not possible to merge these 2 lists (using odd-even merge) if the sum of their number of elements is not a power of 2. – Everaldo Aguiar Feb 23 '12 at 22:38
Ah it's tough sorry mate. I don't have a solution for you. – robert king Feb 24 '12 at 1:59
No worries! I'll keep working on it and if I eventually come up with something I'll post here. – Everaldo Aguiar Feb 24 '12 at 3:34

Take the network for the least power of two greater than the input size and delete all of the comparators that involve non-existent elements.

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