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I got this problem from an interview with Microsoft.

Given an array of random integers, write an algorithm in C that removes duplicated numbers and return the unique numbers in the original array.

E.g Input: {4, 8, 4, 1, 1, 2, 9} Output: {4, 8, 1, 2, 9, ?, ?}

One caveat is that the expected algorithm should not required the array to be sorted first. And when an element has been removed, the following elements must be shifted forward as well. Anyway, value of elements at the tail of the array where elements were shifted forward are negligible.

Update: The result must be returned in the original array and helper data structure (e.g. hashtable) should not be used. However, I guess order preservation is not necessary.

Update2: For those who wonder why these impractical constraints, this was an interview question and all these constraints are discussed during the thinking process to see how I can come up with different ideas.

share|improve this question
3  
Do you have to preserve the order of the unique numbers? –  Douglas Leeder Oct 7 '09 at 16:55
1  
Does the result have to be returned in the original array? –  Douglas Leeder Oct 7 '09 at 17:00
1  
I have updated the question. The result should be returned in the original array. However, the order of the sequence does not matter. –  ejel Oct 7 '09 at 17:36
3  
It is pretty annoying when someone pimps their answer on the question and other answers. Just be patient, people will get there. –  GManNickG Oct 7 '09 at 19:15
2  
Why isn't a hashtable allowed? That restriction makes no sense. –  RBarryYoung Oct 7 '09 at 22:41

33 Answers 33

up vote 21 down vote accepted

How about:

void rmdup(int *array, int length)
{
    int *current , *end = array + length - 1;

    for ( current = array + 1; array < end; array++, current = array + 1 )
    {
        while ( current <= end )
        {
            if ( *current == *array )
            {
                *current = *end--;
            }
            else
            {
                current++;
            }
        }
    }
}

Should be O(n^2) or less.

share|improve this answer
3  
This is the simple solution and is more than likely what the interview question is looking for. –  Kirk Broadhurst Oct 7 '09 at 23:08
5  
They might even be checking to see that you don't suffer from indulging in premature optimization unless they've given you runtime constraints too! :-) –  Trevor Tippins Oct 7 '09 at 23:48
8  
Lol, though it's definately faster to sort the array and work on the sorted one. Sorting should be provided by an API and is imho no premature optimization. –  ziggystar Nov 20 '09 at 12:14
2  
too few downvotes on this. –  unkulunkulu Jun 26 '12 at 8:54
2  
Shouldn't it be while ( current <= end ) instead of while ( current < end )? –  Shail Apr 19 '13 at 13:51

A solution suggested by my girlfriend is a variation of merge sort. The only modification is that during the merge step, just disregard duplicated values. This solution would be as well O(n log n). In this approach, the sorting/duplication removal are combined together. However, I'm not sure if that makes any difference, though.

share|improve this answer
5  
Great suggestion, but you'll need some bookkeeping to keep track of the end of each merge output. I actually did this once, and yes eliminating the duplicates as you merge makes it much faster. –  Mark Ransom Oct 7 '09 at 18:28
273  
P.S. Marry that girl! –  Mark Ransom Oct 7 '09 at 19:48
2  
It's not clear whether O(N/2) extra space counts as the "helper data structure" banned in the question - I don't know whether the restriction is intended to stipulate O(1) extra space, or just to stipulate that the answer should not depend on a big ol' data structure implementation. Maybe a standard merge is fine. But if not, top tip: do not attempt to write an in-place merge sort in an interview, unless you really know what you're doing. –  Steve Jessop Oct 7 '09 at 22:23
18  
The rep you earned from this answer doesn't belong to you. :P –  GManNickG Oct 10 '09 at 16:14
9  
If you like it put a ring on it! :D Seriously, awesome girlfriend. –  Michael Nett Oct 12 '11 at 9:05

If you are looking for the superior O-notation, then sorting the array with an O(n log n) sort then doing a O(n) traversal may be the best route. Without sorting, you are looking at O(n^2).

Edit: if you are just doing integers, then you can also do radix sort to get O(n).

share|improve this answer
1  
ChrisW: hash sets/dictionaries are only O(1) if you assume no collisions. (I'm not saying I wouldn't use them for this problem -- I probably would -- it's just a fallacy to claim that they're truly O(1).) –  Laurence Gonsalves Oct 7 '09 at 17:36
1  
Actually, since you know the size of the array before-hand, you can guarantee O(1). Then you can trade off collisions vs how much additional memory you use. –  Vitali Oct 7 '09 at 17:54
2  
You might want to elaborate on "traversal", since a naive erasure method might result in O(n^2) for large numbers of duplicates. –  Mark Ransom Oct 7 '09 at 18:15

One more efficient implementation

int i, j;

/* new length of modified array */
int NewLength = 1;

for(i=1; i< Length; i++){

   for(j=0; j< NewLength ; j++)
   {

      if(array[i] == array[j])
      break;
   }

   /* if none of the values in index[0..j] of array is not same as array[i],
      then copy the current value to corresponding new position in array */

  if (j==NewLength )
      array[NewLength++] = array[i];
}

In this implementation there is no need for sorting the array. Also if a duplicate element is found, there is no need for shifting all elements after this by one position.

The output of this code is array[] with size NewLength

Here we are starting from the 2nd elemt in array and comparing it with all the elements in array up to this array. We are holding an extra index variable 'NewLength' for modifying the input array. NewLength variabel is initialized to 0.

Element in array[1] will be compared with array[0]. If they are different, then value in array[NewLength] will be modified with array[1] and increment NewLength. If they are same, NewLength will not be modified.

So if we have an array [1 2 1 3 1], then

In First pass of 'j' loop, array[1] (2) will be compared with array0, then 2 will be written to array[NewLength] = array[1] so array will be [1 2] since NewLength = 2

In second pass of 'j' loop, array[2] (1) will be compared with array0 and array1. Here since array[2] (1) and array0 are same loop will break here. so array will be [1 2] since NewLength = 2

and so on

share|improve this answer
3  
Nice one. I have a suggestion to improve. Second nested loop can be changed to for(j=0; j < NewLength; j++) and last if checking can be changed to if (j == NewLength ) –  Vadakkumpadath Oct 8 '09 at 10:14

I've posted this once before on SO, but I'll reproduce it here because it's pretty cool. It uses hashing, building something like a hash set in place. It's guaranteed to be O(1) in axillary space (the recursion is a tail call), and is typically O(N) time complexity. The algorithm is as follows:

  1. Take the first element of the array, this will be the sentinel.
  2. Reorder the rest of the array, as much as possible, such that each element is in the position corresponding to its hash. As this step is completed, duplicates will be discovered. Set them equal to sentinel.
  3. Move all elements for which the index is equal to the hash to the beginning of the array.
  4. Move all elements that are equal to sentinel, except the first element of the array, to the end of the array.
  5. What's left between the properly hashed elements and the duplicate elements will be the elements that couldn't be placed in the index corresponding to their hash because of a collision. Recurse to deal with these elements.

This can be shown to be O(N) provided no pathological scenario in the hashing: Even if there are no duplicates, approximately 2/3 of the elements will be eliminated at each recursion. Each level of recursion is O(n) where small n is the amount of elements left. The only problem is that, in practice, it's slower than a quick sort when there are few duplicates, i.e. lots of collisions. However, when there are huge amounts of duplicates, it's amazingly fast.

Edit: In current implementations of D, hash_t is 32 bits. Everything about this algorithm assumes that there will be very few, if any, hash collisions in full 32-bit space. Collisions may, however, occur frequently in the modulus space. However, this assumption will in all likelihood be true for any reasonably sized data set. If the key is less than or equal to 32 bits, it can be its own hash, meaning that a collision in full 32-bit space is impossible. If it is larger, you simply can't fit enough of them into 32-bit memory address space for it to be a problem. I assume hash_t will be increased to 64 bits in 64-bit implementations of D, where datasets can be larger. Furthermore, if this ever did prove to be a problem, one could change the hash function at each level of recursion.

Here's an implementation in the D programming language:

void uniqueInPlace(T)(ref T[] dataIn) {
    uniqueInPlaceImpl(dataIn, 0);
}

void uniqueInPlaceImpl(T)(ref T[] dataIn, size_t start) {
    if(dataIn.length - start < 2)
        return;

    invariant T sentinel = dataIn[start];
    T[] data = dataIn[start + 1..$];

    static hash_t getHash(T elem) {
        static if(is(T == uint) || is(T == int)) {
            return cast(hash_t) elem;
        } else static if(__traits(compiles, elem.toHash)) {
            return elem.toHash;
        } else {
            static auto ti = typeid(typeof(elem));
            return ti.getHash(&elem);
        }
    }

    for(size_t index = 0; index < data.length;) {
        if(data[index] == sentinel) {
            index++;
            continue;
        }

        auto hash = getHash(data[index]) % data.length;
        if(index == hash) {
            index++;
            continue;
        }

        if(data[index] == data[hash]) {
            data[index] = sentinel;
            index++;
            continue;
        }

        if(data[hash] == sentinel) {
            swap(data[hash], data[index]);
            index++;
            continue;
        }

        auto hashHash = getHash(data[hash]) % data.length;
        if(hashHash != hash) {
            swap(data[index], data[hash]);
            if(hash < index)
                index++;
        } else {
            index++;
        }
    }


    size_t swapPos = 0;
    foreach(i; 0..data.length) {
        if(data[i] != sentinel && i == getHash(data[i]) % data.length) {
            swap(data[i], data[swapPos++]);
        }
    }

    size_t sentinelPos = data.length;
    for(size_t i = swapPos; i < sentinelPos;) {
        if(data[i] == sentinel) {
            swap(data[i], data[--sentinelPos]);
        } else {
            i++;
        }
    }

    dataIn = dataIn[0..sentinelPos + start + 1];
    uniqueInPlaceImpl(dataIn, start + swapPos + 1);
}
share|improve this answer
1  
Extremely cool, underrated answer! I like the idea of using the element in position 1 as a sentinel value. If I could make a couple of small suggestions, it would be to change step 2 to include "each element is in the position corresponding to its hash modulo the array size", and perhaps clarify that the duplicates to be set to the sentinel are the elements that have the same value (as opposed to the same hash, or the same hash modulo array size). –  j_random_hacker Nov 20 '12 at 5:02

1. Using O(1) extra space, in O(n log n) time

This is possible, for instance:

  • first do an in-place O(n log n) sort
  • then walk through the list once, writing the first instance of every back to the beginning of the list

I believe ejel's partner is correct that the best way to do this would be an in-place merge sort with a simplified merge step, and that that is probably the intent of the question, if you were eg. writing a new library function to do this as efficiently as possible with no ability to improve the inputs, and there would be cases it would be useful to do so without a hash-table, depending on the sorts of inputs. But I haven't actually checked this.

2. Using O(lots) extra space, in O(n) time

  • declare a zero'd array big enough to hold all integers
  • walk through the array once
  • set the corresponding array element to 1 for each integer.
  • If it was already 1, skip that integer.

This only works if several questionable assumptions hold:

  • it's possible to zero memory cheaply, or the size of the ints are small compared to the number of them
  • you're happy to ask your OS for 256^sizepof(int) memory
  • and it will cache it for you really really efficiently if it's gigantic

It's a bad answer, but if you have LOTS of input elements, but they're all 8-bit integers (or maybe even 16-bit integers) it could be the best way.

3. O(little)-ish extra space, O(n)-ish time

As #2, but use a hash table.

4. The clear way

If the number of elements is small, writing an appropriate algorithm is not useful if other code is quicker to write and quicker to read.

Eg. Walk through the array for each unique elements (ie. the first element, the second element (duplicates of the first having been removed) etc) removing all identical elements. O(1) extra space, O(n^2) time.

Eg. Use library functions which do this. efficiency depends which you have easily available.

share|improve this answer

Well, it's basic implementation is quite simple. Go through all elements, check whether there are duplicates in the remaining ones and shift the rest over them.

It's terrible inefficient and you could speed it up by a helper-array for the output or sorting/binary trees, but this doesn't seem to be allowed.

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1  
OTOH, the additional code required to implement a sorting tree might be less (memory) efficient than the simple solution, and is probably less efficient at run-time for small (say fewer than 100 elements) arrays. –  TMN Jun 10 '10 at 13:12

You could do this in a single traversal, if you are willing to sacrifice memory. You can simply tally whether you have seen an integer or not in a hash/associative array. If you have already seen a number, remove it as you go, or better yet, move numbers you have not seen into a new array, avoiding any shifting in the original array.

In Perl:

foreach $i (@myary) {
    if(!defined $seen{$i}) {
        $seen{$i} = 1;
        push @newary, $i;
    }
}
share|improve this answer
6  
This was a good idea, until the question was edited. Your hashtable idea is apparently against the rules. –  WCWedin Oct 7 '09 at 18:57
12  
I don't get why this answer gets voted the most. It's written in perl and uses vital features not available in C, as the question asks. –  LiraNuna Oct 7 '09 at 19:31
5  
the question asked for c code, not perl. using perl gets you hashtables and "push" for free. If i could do it in scala you would just call input.removeDuplicates, but i doubt that would have been acceptable to the interviewers :) –  Peter Recore Oct 8 '09 at 17:15

If you are allowed to use C++, a call to std::sort followed by a call to std::unique will give you the answer. The time complexity is O(N log N) for the sort and O(N) for the unique traversal.

And if C++ is off the table there isn't anything that keeps these same algorithms from being written in C.

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2  
It doesn't say you can't sort the array once you get it... Without using O(N) external memory sorting is the only way to do it in O(N log N) or better. –  Greg Rogers Oct 7 '09 at 17:45

The return value of the function should be the number of unique elements and they are all stored at the front of the array. Without this additional information, you won't even know if there were any duplicates.

Each iteration of the outer loop processes one element of the array. If it is unique, it stays in the front of the array and if it is a duplicate, it is overwritten by the last unprocessed element in the array. This solution runs in O(n^2) time.

#include <stdio.h>
#include <stdlib.h>

size_t rmdup(int *arr, size_t len)
{
  size_t prev = 0;
  size_t curr = 1;
  size_t last = len - 1;
  while (curr <= last) {
    for (prev = 0; prev < curr && arr[curr] != arr[prev]; ++prev);
    if (prev == curr) {
      ++curr;
    } else {
      arr[curr] = arr[last];
      --last;
    }
  }
  return curr;
}

void print_array(int *arr, size_t len)
{
  printf("{");
  size_t curr = 0;
  for (curr = 0; curr < len; ++curr) {
    if (curr > 0) printf(", ");
    printf("%d", arr[curr]);
  }
  printf("}");
}

int main()
{
  int arr[] = {4, 8, 4, 1, 1, 2, 9};
  printf("Before: ");
  size_t len = sizeof (arr) / sizeof (arr[0]);
  print_array(arr, len);
  len = rmdup(arr, len);
  printf("\nAfter: ");
  print_array(arr, len);
  printf("\n");
  return 0;
}
share|improve this answer

Let's see:

  • O(N) pass to find min/max allocate
  • bit-array for found
  • O(N) pass swapping duplicates to end.
share|improve this answer

Here is a Java Version.

int[] removeDuplicate(int[] input){

        int arrayLen = input.length;
        for(int i=0;i<arrayLen;i++){
            for(int j = i+1; j< arrayLen ; j++){
                if(((input[i]^input[j]) == 0)){
                    input[j] = 0;
                }
                if((input[j]==0) && j<arrayLen-1){
                        input[j] = input[j+1];
                        input[j+1] = 0;
                    }               
            }
        }       
        return input;       
    }
share|improve this answer

An array should obviously be "traversed" right-to-left to avoid unneccessary copying of values back and forth.

If you have unlimited memory, you can allocate a bit array for sizeof(type-of-element-in-array) / 8 bytes to have each bit signify whether you've already encountered corresponding value or not.

If you don't, I can't think of anything better than traversing an array and comparing each value with values that follow it and then if duplicate is found, remove these values altogether. This is somewhere near O(n^2) (or O((n^2-n)/2)).

IBM has an article on kinda close subject.

share|improve this answer

In Java I would solve it like this. Don't know how to write this in C.

   int length = array.length;
   for (int i = 0; i < length; i++) 
   {
      for (int j = i + 1; j < length; j++) 
      {
         if (array[i] == array[j]) 
         {
            int k, j;
            for (k = j + 1, l = j; k < length; k++, l++) 
            {
               if (array[k] != array[i]) 
               {
                  array[l] = array[k];
               }
               else
               {
                  l--;
               }
            }
            length = l;
         }
      }
   }
share|improve this answer
1  
@mocj: I like your solution, looks very elegant. But I think it doesn't work if the last two elements are equal, because you stop checking for equality one before the last. (comenting here because have too view reputation to comment anywhere else :( ) –  Dominik Oct 7 '09 at 20:33

This can be done in one pass with an O(N log N) algorithm and no extra storage.

Proceed from element a[1] to a[N]. At each stage i, all of the elements to the left of a[i] comprise a sorted heap of elements a[0] through a[j]. Meanwhile, a second index j, initially 0, keeps track of the size of the heap.

Examine a[i] and insert it into the heap, which now occupies elements a[0] to a[j+1]. As the element is inserted, if a duplicate element a[k] is encountered having the same value, do not insert a[i] into the heap (i.e., discard it); otherwise insert it into the heap, which now grows by one element and now comprises a[0] to a[j+1], and increment j.

Continue in this manner, incrementing i until all of the array elements have been examined and inserted into the heap, which ends up occupying a[0] to a[j]. j is the index of the last element of the heap, and the heap contains only unique element values.

int algorithm(int[] a, int n)
{
    int   i, j;  

    for (j = 0, i = 1;  i < n;  i++)
    {
        // Insert a[i] into the heap a[0...j]
        if (heapInsert(a, j, a[i]))
            j++;
    }
    return j;
}  

bool heapInsert(a[], int n, int val)
{
    // Insert val into heap a[0...n]
    ...code omitted for brevity...
    if (duplicate element a[k] == val)
        return false;
    a[k] = val;
    return true;
}

Looking at the example, this is not exactly what was asked for since the resulting array preserves the original element order. But if this requirement is relaxed, the algorithm above should do the trick.

share|improve this answer

How about the following?

int* temp = malloc(sizeof(int)*len);
int count = 0;
int x =0;
int y =0;
for(x=0;x<len;x++)
{
    for(y=0;y<count;y++)
    {
        if(*(temp+y)==*(array+x))
        {
            break;
        }
    }
    if(y==count)
    {
        *(temp+count) = *(array+x);
        count++;
    }
}
memcpy(array, temp, sizeof(int)*len);

I try to declare a temp array and put the elements into that before copying everything back to the original array.

share|improve this answer

After review the problem, here is my delphi way, that may help

var
A: Array of Integer;
I,J,C,K, P: Integer;
begin
C:=10;
SetLength(A,10);
A[0]:=1; A[1]:=4; A[2]:=2; A[3]:=6; A[4]:=3; A[5]:=4;
A[6]:=3; A[7]:=4; A[8]:=2; A[9]:=5;

for I := 0 to C-1 do
begin
  for J := I+1 to C-1 do
    if A[I]=A[J] then
    begin
      for K := C-1 Downto J do
        if A[J]<>A[k] then
        begin
          P:=A[K];
          A[K]:=0;
          A[J]:=P;
          C:=K;
          break;
        end
        else
        begin
          A[K]:=0;
          C:=K;
        end;
    end;
end;

//tructate array
setlength(A,C);
end;
share|improve this answer

Use bloom filter for hashing. This will reduce the memory overhead very significantly.

share|improve this answer

The following example should solve your problem:

def check_dump(x):
   if not x in t:
      t.append(x)
      return True

t=[]

output = filter(check_dump, input)

print(output)
True
share|improve this answer

Here is my solution.

///// find duplicates in an array and remove them

void unique(int* input, int n)
{
     merge_sort(input, 0, n) ;

     int prev = 0  ;

     for(int i = 1 ; i < n ; i++)
     {
          if(input[i] != input[prev])
               if(prev < i-1)
                   input[prev++] = input[i] ;                         
     }
}
share|improve this answer
import java.util.ArrayList;


public class C {

    public static void main(String[] args) {

        int arr[] = {2,5,5,5,9,11,11,23,34,34,34,45,45};

        ArrayList<Integer> arr1 = new ArrayList<Integer>();

        for(int i=0;i<arr.length-1;i++){

            if(arr[i] == arr[i+1]){
                arr[i] = 99999;
            }
        }

        for(int i=0;i<arr.length;i++){
            if(arr[i] != 99999){

                arr1.add(arr[i]);
            }
        }

        System.out.println(arr1);
}
    }
share|improve this answer

This can be done in a single pass, in O(N) time in the number of integers in the input list, and O(N) storage in the number of unique integers.

Walk through the list from front to back, with two pointers "dst" and "src" initialized to the first item. Start with an empty hash table of "integers seen". If the integer at src is not present in the hash, write it to the slot at dst and increment dst. Add the integer at src to the hash, then increment src. Repeat until src passes the end of the input list.

share|improve this answer
2  
In the modification to the original question, hash tables aren't allowed. Your two pointer approach is a nice way to compact the output once you've identified the duplicates, though. –  Mark Ransom Oct 7 '09 at 19:14

Insert all the elements in a binary tree the disregards duplicates - O(nlog(n)). Then extract all of them back in the array by doing a traversal - O(n). I am assuming that you don't need order preservation.

share|improve this answer

In JAVA,

    Integer[] arrayInteger = {1,2,3,4,3,2,4,6,7,8,9,9,10};

    String value ="";

    for(Integer i:arrayInteger)
    {
        if(!value.contains(Integer.toString(i))){
            value +=Integer.toString(i)+",";
        }

    }

    String[] arraySplitToString = value.split(",");
    Integer[] arrayIntResult = new Integer[arraySplitToString.length];
    for(int i = 0 ; i < arraySplitToString.length ; i++){
        arrayIntResult[i] = Integer.parseInt(arraySplitToString[i]);
    }

output: { 1, 2, 3, 4, 6, 7, 8, 9, 10}

hope this will help

share|improve this answer
1  
Test this with the input arrayInteger = {100,10,1}; –  Blastfurnace Jun 23 '12 at 15:59
Integer[] arrayInteger = {1,2,3,4,3,2,4,6,7,8,9,9,10}; 

Set set = new HashSet();
for(Integer i:arrayInteger)
set.add(i);

System.out.println(set);
share|improve this answer
1  
The OP specified that helper data structures be avoided, and that the results be returned in the original array. Your answer, unfortunately, does not meet these requirements. –  David Gorsline Sep 27 '12 at 20:13

This is the naive (N*(N-1)/2) solution. It uses constant additional space and maintains the original order. It is similar to the solution by @Byju, but uses no if(){} blocks. It also avoids copying an element onto itself.

#include <stdio.h>
#include <stdlib.h>

int numbers[] = {4, 8, 4, 1, 1, 2, 9};
#define COUNT (sizeof numbers / sizeof numbers[0])

size_t undup_it(int array[], size_t len)
{
size_t src,dst;

  /* an array of size=1 cannot contain duplicate values */
if (len <2) return len; 
  /* an array of size>1 will cannot at least one unique value */
for (src=dst=1; src < len; src++) {
        size_t cur;
        for (cur=0; cur < dst; cur++ ) {
                if (array[cur] == array[src]) break;
                }
        if (cur != dst) continue; /* found a duplicate */

                /* array[src] must be new: add it to the list of non-duplicates */
        if (dst < src) array[dst] = array[src]; /* avoid copy-to-self */
        dst++;
        }
return dst; /* number of valid alements in new array */
}

void print_it(int array[], size_t len)
{
size_t idx;

for (idx=0; idx < len; idx++)  {
        printf("%c %d", (idx) ? ',' :'{' , array[idx] );
        }
printf("}\n" );
}

int main(void) {    
    size_t cnt = COUNT;

    printf("Before undup:" );    
    print_it(numbers, cnt);    

    cnt = undup_it(numbers,cnt);

    printf("After undup:" );    
    print_it(numbers, cnt);

    return 0;
}
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First, you should create an array check[n] where n is the number of elements of the array you want to make duplicate-free and set the value of every element(of the check array) equal to 1. Using a for loop traverse the array with the duplicates, say its name is arr, and in the for-loop write this :

{
    if (check[arr[i]] != 1) {
        arr[i] = 0;
    }
    else {
        check[arr[i]] = 0;
    }
}

With that, you set every duplicate equal to zero. So the only thing is left to do is to traverse the arr array and print everything it's not equal to zero. The order stays and it takes linear time (3*n).

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It'd be cool if you had a good DataStructure that could quickly tell if it contains an integer. Perhaps a tree of some sort.

DataStructure elementsSeen = new DataStructure();
int elementsRemoved = 0;
for(int i=0;i<array.Length;i++){
  if(elementsSeen.Contains(array[i])
    elementsRemoved++;
  else
    array[i-elementsRemoved] = array[i];
}
array.Length = array.Length - elementsRemoved;
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Some of the answers that are written here are pretty trivial (O(n^2) or sorting and traversing in O(NlogN)) and I'm assuming that is not what was expected in an interview for Microsoft. Obviously any answer above O(n) wasn't what they were looking for. The update states that there shouldn't be any helper data structures so any answer that has one (a hash table, tree, bit array or whatever) shouldn't be a valid solution.

If you can allocate additional memory then Jeff B's answer is probably easiest way to do it. I have a good answer for questions like these but the MAXINT needs to be bounded by the size of the array. (Example: An array of size 100 may contain any number between 1 and 100. Remove the dups as the original question)

The answer to this in O(n) time and O(1) memory is:

// FLAG ALL DUPS IN THE ORIGIN ARRAY
int maxNumInArray = findMaxNumInArray(arr);
int dup = findMinNumInArray(arr) - 1;
for (int i=0; i < arrLength; ++i) {
    int seekIndex = arr[i] % (maxNumInArray+1);
    if (arr[seekIndex] > maxNumInArray)
        arr[i] = dup; // invalidate index
    else
        arr[seekIndex] = arr[seekIndex] + maxNumInArray;
}

// REMOVE EMPTY SPACES
int i = 0;
int j = arrLength(arr)-1;
while (i<j) {
    while (arr[i] != dup)
        ++i;
    while (arr[j] == dup)
        --j;
    swap(arr[i], arr[j]);
}

If you don't know the bounds my answer isn't useful but u can try and play with it. Oh, and this specific variation wont work with negative numbers but its not a problem to fix it.

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