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This is question asked in one of the interview. Please suggest some view. Given an array containing all positive integers. You have to arrange elements in such a way that odd elements are at odd position and even elements are at even positions.

PS. No extra space. O(N) solution

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Have you tried solving it at all? –  Blender Oct 31 '12 at 21:01
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"Given an array containing all positive integers." That's one big array! –  A. Webb Oct 31 '12 at 21:02
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I just love interview question that have no bearing whatsoever on tasks that might actually be needed for a real-life business requirement. I'd like to vote the interviewer down a couple of times. Seriously, they should be asking things like "How do you prevent against SQL Injection?", "Can you describe XSRF and XSS to me? ", "How have you handled a situation where a business requirement needed to be changed because you saw that it would cause problems that the business didn't anticipate?" –  David Oct 31 '12 at 21:03
    
I tried solving couldn't get O(n) solution though. My approach was to sort elements and do rearranging after that but turned out to be not good solution. –  username_4567 Oct 31 '12 at 21:04
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Indeed, this one is not hard to do in O(n) time and in-place, assuming a solution is possible. If more than half (+1) are even (or more than half (+1) odd) you have problems. –  A. Webb Oct 31 '12 at 21:12

3 Answers 3

Iterate over the even positions until you find an odd number. Iterate over the odd positions until you find and even number (using a different index). Swap the two numbers, and repeat.

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Are you allowed to double the size of the array? Otherwise, the question doesn't make sense. Why?!? assume you are given an array full of odd numbers, can you think of any solution then? No, there is not.

So, I assume that you are allowed to double the size of the array. Then for any i, put the i-element ( a(i) ) into the location 2*i or 2*i +1 depending on whether a(i) is even or odd resp.

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Two two new Arrays OddArray and EvenArray of same size as that of given array. Traverse through the given array and keep sending all the odd to OddArray and keep at odd positions and even number to EvenArray keeping numbers at even positions.

The efficiency will be O(n) and extra memory will be 2n where n is the size of original array.

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Sorry forgot to mention no extra space!! –  username_4567 Oct 31 '12 at 21:06
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In the array of size n, can you confirm if there are exactly n/2 odd numbers and n/2 even numbers? –  Romaan Oct 31 '12 at 21:08

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