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Heap - Sort Algorithm The problem I am having is this, this algorithms n input is 2, this is designed so that the 1st position (int i) of the array and the 2nd position (int j) have their values compared.

The problem is that this ignores the 0 position of the given array list. I have tried reducing certain values, this will create infinite loops. The algorithm is an adaptation of pseudocode. It isn't designed to run arraylist from 0. I can't think of how to re-adapt this algorithm into a decent minimum heap sort.

public static void input( ArrayList<input> vertexList, int n )
{
    int j=n; 
    int i=n/2; 
    input object = vertexList.get(n);

    while ((i>0) && vertexList.get(i)> object){

        vertexList.set(j, vertexList.get(i));

        j = i;
        i = i/2;
    }

    vertexList.set(j, object);

}
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1  
The parent index in a 0-indexed array is (i-1)/2, not i/2 –  harold Jan 19 '12 at 22:51
    
@harold I tried that, the problem is that whatever data is inputted, the heap will start the comparison from position [1] > [2], and not [0] > [1] –  Hopeless Programmer Jan 19 '12 at 22:56
    
What about i>=0 instead of i>0 in your while loop? –  Thomas Jungblut Jan 19 '12 at 23:07
    
@ThomasJungblut The problem then would be if j=1 i=0 then the loop would be infinite –  Hopeless Programmer Jan 19 '12 at 23:11
    
@HopelessProgrammer Print i and j in every iteration before and after their recomputation. That should give a clue. –  ElKamina Jan 19 '12 at 23:21
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1 Answer 1

up vote 1 down vote accepted

try to use vertexList.get(i-1) and vertexList.get(j-1) and vertexList.set(j-1, ...)

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This has helped solve the problem however the array is now not sorting the final arrayList location. –  Hopeless Programmer Jan 20 '12 at 1:19
    
Maybe you should show the entire code you are using to test this. –  stryba Jan 20 '12 at 8:29
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