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Can any one tell the java example/algorithm to search element in an array with following implementation:
- O(n^2) algorithm and
- O(n) algorithm

Note: This is not a homework.

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closed as not constructive by arshajii, Will Oct 29 '12 at 13:40

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1  
how about Arrays.binarySearch from the API ??? –  PermGenError Oct 29 '12 at 13:22
3  
O(n²) should be easy; take the length, call it n, wait for n² seconds, then do a linear search. –  larsmans Oct 29 '12 at 13:23
1  
@Iarsmans, I think he's looking for -O(n^2) and -O(n) algorithms (minus sign before big O) –  ignis Oct 29 '12 at 13:25
1  
When its not a homework, please explain the reason for searchin a O(n²) algorithm - as noted, it doesn't make sense for a trivial search. (and you can search better than O(n) in sorted arrays, as stated by @chaitanya10 –  DThought Oct 29 '12 at 13:32
    
@DThought: Exactly my thoughts. I cannot imagine a reason why someone searches an O(n^2) algorithm without homework....-1 for question –  Thorsten S. Oct 29 '12 at 13:34

3 Answers 3

up vote 2 down vote accepted
  • Searching for a single item in an array is O(N)
  • Searching for a longest run of increasing numbers in an array is O(N^2) if you use a straightforward algorithm with two nested loops*

Note: This is not Java-specific.


* A faster algorithm exists to do this search.

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It makes no sense to do a O(n²) search algorithm.

To do a O(n) algorithm just search the element in the list.

for(int i=0;i<array.length;i++)
  if(array[i]==search)
    return array[i];
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Well O(n) would be just a linear search; traverse the list from start to end until you encounter whatever it is you're searching for.

It's strange that you want an O(n²) algorithm... but what you could do is, in each iteration of your for-loop (in the O(n) search), sleep for a duration defined by the length of the array (Thread.sleep(array.length)). The 'sleeping' period would be O(n) as it depends linearly on the length of the array, and the overall linear search would also be O(n), so in conjunction the entire process would be O(n²).


O(n)

for (int i = 0 ; i < array.length ; i++) {
    if (array[i] == SOME_ELEMENT) {
        // ...
        break;
    }
 }    

O(n²)

for (int i = 0 ; i < array.length ; i++) {
    Thread.sleep(array.length);
    if (array[i] == SOME_ELEMENT) {
        // ...
        break;
    }
 }
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