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Given a array of n distinct integer. Find all pairs of x,y in the array such that z(given) = x * y...do it without sorting and in a most efficient manner..

[edit] Integer are within range of int i.e 0-65536 and numbers are non negative if that helps. Dont want to sort coz it will take a lot of time. Storage space is not a issue.

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And your question is? –  birryree Dec 8 '10 at 5:33
    
reads like homework... –  Damien-at-SF Dec 8 '10 at 5:37
    
I don't like questions with constraints like "don't use sorting", "don't use loops"... :-\ –  st0le Dec 8 '10 at 5:38
    
Its now a homework for god's sake. I am working in a company. I have to find pairs needed for my project. I wanted to find the effiecient solution available –  ashmish2 Dec 8 '10 at 5:39
    
@honeybadger, How big are the integers? Easily Factorerd? –  st0le Dec 8 '10 at 5:40

3 Answers 3

up vote 1 down vote accepted

Here is linear time hash based solution:

Let hash be an array of size 65537 initilized to 0.

foreach element ele in Array

    if ele != 0
        hash[product/ele] = ele
    end-if

    if hash[ele] != 0 AND ele * hash[ele] == product
        print ele, product/ele
    end-if

end-foreach
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The second loop can be merged into the first one...i think. also this will print both a*b and b*a.... –  st0le Dec 8 '10 at 5:58
    
@stOle: Thanks for pointing. printing distinct pairs is left as HW for OP. –  codaddict Dec 8 '10 at 6:02
    
thanks codaddict it looks good –  ashmish2 Dec 8 '10 at 6:20

There aren't any super efficient ways of doing this. The best I can think of is O(n^2):

Have an auxiliary function that takes a number (a) and a list, and goes through every element (b) checking a*b = z and saving the pair if it is.

Go through every element of your original list, and if a particular element (x) divides z (ie z % x = 0) then send x and the remainder of the list after x to the auxiliary function.

UPDATE:

I'm giving an O(n^2) solution because the question did not specify unique pairs. If only unique pairs are desired, this should be added to the question. Also, my solution assumes the order of pairs doesn't matter, which is another detail that should be clarified.

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No o(n^2) is out of the question. I will prefer to sort than doing this. –  ashmish2 Dec 8 '10 at 5:54
    
the array contains distinct integers, so obviously, the pairs will be unique.... –  st0le Dec 8 '10 at 6:35
    
@st0le you're absolutely right, I shouldn't have critiqued the wording without actually reading it carefully first –  Zaven Nahapetyan Dec 8 '10 at 6:40

Iterate through the array...if an element x can divide z (ie z % x == 0), check if it's other factor y=(z/x) exists in the HashTable....

If it does, then you found a pair...else just add it to the hashTable and continue...

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