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Merge sort algorithm reduce the original array in a collection of 2 numbers, and put the lower before, and after sort 2 collections (1collection x 1collection), after 2x2, 3x3, etc. Finally array is sorted. The question is: How this algorithm (the implementation in Java) sort the array if the second mergeSort(), when call mergeSort(), and merge, doesn't assign the output to an array?

I call the algorithm with:

int[] a = {4 , 8, 19, 7};
int[] sorted_array = mergeSort(a, 0, a.length-1);

static void mergeSort(int[] a)
{
    return mergeSort(a, 0, a.length - 1);
}

static int[] mergeSort(int[] a, int i, int f)
{
    if(i < f)
    {
        int h = (f + i) / 2;
        mergeSort(a, i, h);
        mergeSort(a, h + 1, f);
        merge(a, i, h, f);
    }
return a;
}

static void merge(int[] a, int i, int h, int f)
{
    int[] aux = new int[f - i + 1];
    int k = 0, iaux = i, jaux = h + 1, kaux;

while(iaux <= h && jaux <= f)
{
    if(a[iaux] < a[jaux])
    {
        aux[k] = a[iaux];
        iaux++;
    }
    else
    {
        aux[k] = a[jaux];
        jaux++;
    }

    k++;
}

while(iaux <= h)
{
    aux[k] = a[iaux];
    iaux++;
    k++;
}

while(jaux <= f)
{
    aux[k] = a[jaux];
    jaux++;
    k++;
}

kaux = 0;

for(iaux = i; iaux <= f; iaux++)
{
    a[iaux] = aux[kaux];
    kaux++;
}

}

Thank you.

share|improve this question
1  
I think you meant doubt instead of dude. –  Snaduko Mar 25 at 23:50
    
Oh, yes, my English... Thank you. –  user3270009 Mar 26 at 0:01
    
Possible duplicate of Is Java "pass-by-reference"? (not a duplicate in the sense that it's the same question, but rather that presumably the answers to that will answer your question). –  Dukeling Mar 26 at 0:14

2 Answers 2

up vote 1 down vote accepted

In Java, everything is passed-by-value. But it is important to know, what that value is!

Every variable, that is not primitive data type (int, boolean etc.) contains reference to object.

In this line int[] a = {4 , 8, 19, 7}; you create new array and you store reference to this object in variable a.

If you call this method mergeSort(a, 0, a.length-1);, the value of variable a which is reference to the array is copied to the method (the second and third parameters are primitive data types, its value is copied, not reference). Therefore inside mergeSort method, it accessing directly the same array.

share|improve this answer
    
Java can't pass variables by reference. But I don't know how merge() return the value. In theory, merge() lose the array sorted leaving the method. –  user3270009 Mar 26 at 0:03
    
@user3270009 - there is difference between COPYING the reference (Java) or pass by reference (C++). Java copy the reference of objects, not referencing variables. In this case, it means, that both variables - "a" in main method and "a" in mergeSort method have reference to the same object (but not to each other like in C++ when pass by reference) –  libik Mar 26 at 0:17

I have only skimmed the code, but it appears to modify the input array in place. That means, if you call it like this

int[] a = {4, 8, 19, 7};
mergeSort(a, 0, a.length-1);

and then you inspect the contents of a, you will find it to be {4, 7, 8, 19}. And if you delete the return a; at the end of the mergeSort function, it will still work. Returning a again is just a convenience for the caller.

The internal calls to mergeSort and merge rely on this property.

In the comments you ask how this is being done: the key part is the loop at the very end of merge

for(iaux = i; iaux <= f; iaux++)
{
    a[iaux] = aux[kaux];
    kaux++;
}

which is writing to the a array.

share|improve this answer
    
But when I merge() the collections, the result is not saved! I can return a, but the array a, in theory doesn't change. –  user3270009 Mar 25 at 23:48
    
One of the following is true: you are mistaken about the result not being saved, merge is buggy, or I have no idea what you mean by that objection. –  Zack Mar 26 at 0:01
    
I do: int[] sorted_array = mergeSort(a, 0, a.length-1); and the first mergeSort will divide to a collection of 2 numbers, after the second mergeSort() will divide to a collection of 2 numbers (or 1 as defect), and merge() will sort the 2 collections, and the array a will not returned. Then, how can the array a save the sorted array? –  user3270009 Mar 26 at 0:11
    
Ah. You do not understand what I mean by "modify the input array in place". I shall attempt to improve my exposition. –  Zack Mar 26 at 0:16
    
Please see edited answer now. –  Zack Mar 26 at 0:20

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