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This was a question in one my friend's programming class.

Q. How do you sort an array of ints and then arrange them such that all duplicate elements appear at the end of the array?

For example, given the input

{5, 2, 7, 6, 1, 1, 5, 6, 2}

The output would be

{1, 2, 5, 6, 7, 1, 2, 5, 6}

Note that the numbers are sorted and duplicate numbers are after 7, which is the maximum in the array.

This has to be achieved with out using any Java library packages/utils.

I suggested to sort the array first using insertion or bubble sort, and then go over the array, perform something like the following :

for (int i = 0; i < nums.length - 2; i++) {
    for (int j = i + 1; j < nums.length; j++) {
        //current and next are same, move elements up
        //and place the next number at the end.
        if (nums[i] == nums[j]) {
            int temp = nums[j];
            for (int k = j; k < nums.length - 1; k++) {
                nums[k] = nums[k + 1];
            }
            nums[nums.length - 1] = temp;
            break;
        }
    }
}

I tried this myself later (and that is how the code above) - As I try this out, I think this could be achieved by using less code, be more efficiently. And may be I gave a wrong advice.

Any thoughts?

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1  
Bubble sort? Really? –  Nick Johnson Aug 30 '11 at 6:13
1  
@Nick Johnson: Remember, he is learning programming. –  ring bearer Aug 30 '11 at 15:32
    
Then my issue is with whoever taught him - teaching bubble sort as anything other than an example of "naive algorithms that don't, in fact, work very well" is irresponsible. :) –  Nick Johnson Aug 30 '11 at 22:37
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4 Answers

up vote 7 down vote accepted

Depending on the parameters of your problem, there are many approaches to solving this.

If you are not allowed to use O(n) external memory, then one option would be to use a standard sorting algorithm to sort the array in-place in O(n log n) time, then to run a second pass over it to move the duplicates to the end (as you've suggested). The code you posted above takes O(n2) time, but I think that this step can be done in O(n log n) time using a slightly more complicated algorithm. The idea works in two steps. In the first step, in O(n log n) time you bring all non-duplicated elements to the front in sorted order and bring all the duplicates to the back in non-sorted order. Once you've done that, you then sort the back half of the array in O(n log n) time using the sorting algorithm from the first step.

I'm not going to go into the code to sort the array. I really love sorting, but there are so many other good resources on how to sort arrays in-place that it's not a good use of my time/space here to go into them. If it helps, here's links to Java implementations of heapsort, quicksort, and smoothsort, all of which runs in O(n log n) time. Heapsort and smoothsort use only O(1) external memory, while quicksort can use O(n) in the worst case (though good implementations can limit this to O(log n) using cute tricks).

The interesting code is the logic to bring all the non-duplicated elements to the front of the range. Intuitively, the code works by storing two pointers - a read pointer and a write pointer. The read pointer points to the next element to read, while the write pointer points to the location where the next unique element should be placed. For example, given this array:

1 1 1 1 2 2 3 4 5 5

We start with the read and write pointers initially pointing at 1:

write  v
       1 1 1 1 2 2 3 4 5 5
read   ^

Next, we skip the read pointer ahead to the next element that isn't 1. This finds 2:

write  v
       1 1 1 1 2 2 3 4 5 5
read           ^

Then, we bump the write pointer to the next location:

write    v
       1 1 1 1 2 2 3 4 5 5
read           ^

Now, we swap the 2 into the spot held by the write pointer:

write    v
       1 2 1 1 1 2 3 4 5 5
read           ^

advance the read pointer to the next value that isn't 2:

write    v
       1 2 1 1 1 2 3 4 5 5
read               ^

then advance the write pointer:

write      v
       1 2 1 1 1 2 3 4 5 5
read               ^

Again, we exchange the values pointed at by 'read' and 'write' and move the write pointer forward, then move the read pointer to the next unique value:

write        v
       1 2 3 1 1 2 1 4 5 5
read                 ^

Once more yields

write          v
       1 2 3 4 1 2 1 1 5 5
read                   ^

and the final iteration gives

write            v
       1 2 3 4 5 2 1 1 1 5
read                      ^

If we now sort from the write pointer to the read pointer, we get

write            v
       1 2 3 4 5 1 1 1 2 5
read                      ^

and bingo! We've got the answer we're looking for.

In (untested, sorry...) Java code, this fixup step might look like this:

int read = 0;
int write = 0;

while (read < array.length) {
     /* Swap the values pointed at by read and write. */
     int temp = array[write];
     array[write] = array[read];
     array[read] = temp;

     /* Advance the read pointer forward to the next unique value.  Since we
      * moved the unique value to the write location, we compare values
      * against array[write] instead of array[read].
      */
     while (read < array.length && array[write] == array[read])
         ++ read;

     /* Advance the write pointer. */
     ++ write;
}

This algorithm runs in O(n) time, which leads to an overall O(n log n) algorithm for the problem. Since the reordering step uses O(1) memory, the overall memory usage would be either O(1) (for something like smoothsort or heapsort) or O(log n) (for something like quicksort).

EDIT: After talking this over with a friend, I think that there is a much more elegant solution to the problem based on a modification of quicksort. Typically, when you run quicksort, you end up partitioning the array into three regions:

 +----------------+----------------+----------------+
 | values < pivot | values = pivot | values > pivot |
 +----------------+----------------+----------------+

The recursion then sorts the first and last regions to put them into sorted order. However, we can modify this for our version of the problem. We'll need as a primitive the rotation algorithm, which takes two adjacent blocks of values in an array and exchanges them in O(n) time. It does not change the relative order of the elements in those blocks. For example, we could use rotation to convert the array

1 2 3 4 5 6 7 8

into

3 4 5 6 7 8 1 2

and can do so in O(n) time.

The modified version of quicksort would work by using the Bentley-McIlroy three-way partition algortihm (described here) to, using O(1) extra space, rearrange the array elements into the configuration shown above. Next, we apply a rotation to reorder the elements so that they look like this:

 +----------------+----------------+----------------+
 | values < pivot | values > pivot | values = pivot |
 +----------------+----------------+----------------+

Next, we perform a swap so that we move exactly one copy of the pivot element into the set of elements at least as large as the pivot. This may have extra copies of the pivot behind. We then recursively apply the sorting algorithm to the < and > ranges. When we do this, the resulting array will look like this:

 +---------+-------------+---------+-------------+---------+
 | < pivot | dup < pivot | > pivot | dup > pivot | = pivot |
 +---------+-------------+---------+-------------+---------+

We then apply two rotations to the range to put it into the final order. First, rotate the duplicate values less than the pivot with the values greater than the pivot. This gives

 +---------+---------+-------------+-------------+---------+
 | < pivot | > pivot | dup < pivot | dup > pivot | = pivot |
 +---------+---------+-------------+-------------+---------+

At this point, this first range is the unique elements in ascending order:

 +---------------------+-------------+-------------+---------+
 | sorted unique elems | dup < pivot | dup > pivot | = pivot |
 +---------------------+-------------+-------------+---------+

Finally, do one last rotation of the duplicate elements greater than the pivot and the elements equal to the pivot to yield this:

 +---------------------+-------------+---------+-------------+
 | sorted unique elems | dup < pivot | = pivot | dup > pivot |
 +---------------------+-------------+---------+-------------+

Notice that these last three blocks are just the sorted duplicate values:

 +---------------------+-------------------------------------+
 | sorted unique elems |      sorted duplicate elements      |
 +---------------------+-------------------------------------+

and voila! We've got everything in the order we want. Using the same analysis that you'd do for normal quicksort, plus the fact that we're only doing O(n) work at each level (three extra rotations), this works out to O(n log n) in the best case with O(log n) memory usage. It's still O(n2) in the worst case with O(log n) memory, but that happens with extremely low probability.

If you are allowed to use O(n) memory, one option would be to build a balanced binary search tree out of all of the elements that stores key/value pairs, where each key is an element of the array and the value is the number of times it appears. You could then sort the array in your format as follows:

  1. For each element in the array:
    • If that element already exists in the BST, increment its count.
    • Otherwise, add a new node to the BST with that element having count 1.
  2. Do an inorder walk of the BST. When encountering a node, output its key.
  3. Do a second inorder walk of the BST. When encountering a node, if it has count greater than one, output n - 1 copies of that node, where n is the number of times it appears.

The runtime of this algorithm is O(n log n), but it would be pretty tricky to code up a BST from scratch. It also requires external space, which I'm not sure you're allowed to do.

However, if you are allowed external space and the arrays you are sorting are small and contain small integers, you could modify the above approach by using a modified counting sort. Just replace the BST with an array large enough for each integer in the original array to be a key. This reduces the runtime to O(n + k), with memory usage O(k), where k is the largest element in the array.

Hope this helps!

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+1 Nice textbook chapter! –  Jean-François Corbett Aug 30 '11 at 7:24
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a modified merge sort could do the trick: on the last merge pass keep track of the last number you pushed on the front of result array and if the lowest of the next numbers is equal add to the end instead of front

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I'm not sure I see how this would work. Wouldn't this break the recursive assumptions necessary in mergesort, namely that the two subarrays come back sorted? –  templatetypedef Aug 30 '11 at 2:33
    
I said on the LAST merge pass so on the recursive calls it's a normal merge sort when the original caller gets the 2 sorted subarrays it adds dupes to the end instead of the front –  ratchet freak Aug 30 '11 at 2:41
    
Ah, I misread that. Thanks for clarifying! –  templatetypedef Aug 30 '11 at 3:00
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Welcome to the world of Data Structures and Algorithms. You're absolutely right in that you could sort that faster. You could also do it a dozen different ways. PHD's are spent on this stuff :)

Here's a link where you can see an optimized bubble sort

You might also want to check out Big O Notation

Have fun and good luck!

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Use quicksort to sort the array. When implementing the sort you can modify it slightly by adding all duplicates to a seperate duplicate array. When done simply append the duplicate array to the end of the sorted array.

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