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My question should actually be really simple: I have an object array of Players.(players[]) I want to have a function that rotates this array until an index:

public void rotateArray(Object[] array, int index)

This would convert

{Player1, Player2, Player3, Player4, Player5}

with an index of 2 to:

{Player3, Player4, Player5, Player1, Player2}

But I want to prevent issues with references. I've tried System.arraycopy() but either I was to dumb to get it working or I is the wrong method for this.

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What do you want to do with the rotated array? –  Rohit Jain Sep 14 '13 at 15:38
    
I want to use this function to set a order to call these objects. –  VoidCatz Sep 14 '13 at 15:40
1  
Can't you rather iterate in that order? Array copy will be an expensive operation everytime you do it. –  Rohit Jain Sep 14 '13 at 15:40
    
What do you mean by iterate? –  VoidCatz Sep 14 '13 at 15:44

3 Answers 3

up vote 2 down vote accepted

It will be necessary to make a copy of the array to use arraycopy, which I recommend as it should be the fastest. The only reason to avoid a copy is if the array is very large and memory is tight.

public void rotateArray(Object[] array, int index)
{
    Object[] result;

    result = new Object[array.length];

    System.arraycopy(array, index, result, 0, array.length - index);
    System.arraycopy(array, 0, result, array.length - index, index);

    System.arraycopy(result, 0, array, 0, array.length);
}
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I'll check this to make sure there are no off-by-one or indexing mistakes. –  ash Sep 14 '13 at 15:44
    
N.B. to anyone who is trying to use this for generalized rotation (negatives or rotations larger than the length of the array): this code will crash. Insert at the beginning: index %= array.length; if (index > 0) { index += array.length; } Note that the negative check is necessary, because Java's mod is not a real math mod: it can produce negatives. –  Akroy Sep 9 '14 at 2:35
    
I never heard of System.arrayCopy before... I'm going to be using this a in the future. –  mailmindlin Oct 24 '14 at 4:34

This one-line solution rotates the array in-place, with constant extra memory and linear time:

Collections.rotate(Arrays.asList(array), -index);
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2  
I upvote this. How is possible that this is not the accepted answer? –  blackbird014 Sep 14 '13 at 18:36

A more efficient solution for big arrays, uses O(1) space:

 public static void rotateArray(int[] a, int i) {
    i %= a.length;
    reverse(a, 0, a.length);
    reverse(a, 0, i);
    reverse(a, i, a.length);
 }

 public static void reverse(int[] a, int l, int r) {
    for (int left = l, right = r - 1; left < right; left++, right--) {
        int temp = a[left];
        a[left]  = a[right];
        a[right] = temp;
    }
  }
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I don't think this algorithm is correct in all cases. Consider the sequence BCDA, where the objective is to rotate until A is first. At each reversal step, this algorithm produces : BCDA->ADCB->CDAB (Incorrect). –  tofarr Feb 19 '14 at 13:36
    
If you set i=a.length-i this seems to work. –  tofarr Feb 19 '14 at 13:43
    
I've checked and the code works correctly. Rotation happens cyclically to the right. e.g. a= {1,2,3,4} i = 0 --> nothing is rotated. i = 1 --> a = {4,1,2,3} etc. i = 4 --> will put the array to initial state(i=a.length). i = 5 is the same as i = 1, i = 6 same as i = 2 etc. –  vibneiro Feb 20 '14 at 8:21
    
My bad - I was interpreting "i" as the index of the element which should be first after the rotation is complete, rather than the number of rotations to perform (hence setting i = a.length-1; ) –  tofarr Feb 20 '14 at 15:43
    
No problem. Yes, i is not an index but a shift on one position of all all elements to the right –  vibneiro Feb 21 '14 at 12:56

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