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Microsoft Interview Question

Remove Duplicates from string,Without using HASHMAP and O(n) time complexity

There is a solution in O(n2) time complexity, but the interview question specifically mentions NO HASHMAP and O(n) time.

Any pointers are appreciated, because I can't think anything lower than O(n log n) time, which employs sorting and does use O(n) space.

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closed as not a real question by David Waters, Robert Harvey Jun 20 '13 at 20:26

It's difficult to tell what is being asked here. This question is ambiguous, vague, incomplete, overly broad, or rhetorical and cannot be reasonably answered in its current form. For help clarifying this question so that it can be reopened, visit the help center.If this question can be reworded to fit the rules in the help center, please edit the question.

3  
Do you mean "remove duplicate chars"? –  Tomer Arazy Jun 18 '13 at 19:16
    
Yes i do mean the same . –  Spandan Jun 18 '13 at 19:17
    
SO is less about "is it possible" and more about finding practical solutions. –  Corey Ogburn Jun 18 '13 at 19:18
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@Spandan do you have a written version of the question? –  Sam I am Jun 18 '13 at 19:26
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@Spandan It will let us know if there are any other unusual stipulations that you haven't told us yet(like the no hash sets part). –  Sam I am Jun 18 '13 at 19:29

3 Answers 3

up vote 10 down vote accepted

You do a sort of bucket sort.

  • make an array containing every single char
  • make an array containing a count for it's corresponding char

The only reason we're using 2 arrays like this is because you specifically disallowed hash maps. You can represent this structure however you please. If you're allowed to convert chars to ints, you need only use 1 array.

Since we're assuming a limited number of possible characters, Each array will be constant size, or O(1)

  • Iterate over your string, and increment the count for each char you find. If count is already greater than 0 you've found a duplicate.

searching your char array for a particular char takes O(1) time, because there is a limited number of chars.

you will do this search n times for a net run-time of O(n)


If arrays are no good, than you can make a linked list to hold only values that you've found. It will still be constant because the size of the linked list is still bound by the number of possible characters.

If you do it that way, you'll more or less be doing the exact same thing, except it cosmetically look less like a bucket-sort strategy.

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1  
A pre-defined fixed size (in english it's of size 26) hashmap is no extra space –  Tomer Arazy Jun 18 '13 at 19:17
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@Spandan O(1) space doesn't mean no extra space. –  greatwolf Jun 18 '13 at 19:18
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@Spandan- This answer satisfies all of your constraints - it runs in O(n) time and uses O(1) space. Remember that O(1) space doesn't mean "no extra storage space." It means "using at most a constant amount of auxiliary storage space." Since there are only a constant number of characters possible in a string, a hash map containing them will use only O(1) auxiliary storage space. The constant might be large, but it's still a constant. –  templatetypedef Jun 18 '13 at 19:30
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@Spandan That's not a HASHmap, because it doesn't use hashing. –  svick Jun 18 '13 at 19:34
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@Spandan, perhaps technically an array could be considered a subset of a hashmap, where the hash is the identity function and there's no possibility of collision. But most people don't view it that way, probably including your interviewer. It's really a magnitude of difference. –  Mark Ransom Jun 18 '13 at 19:36

I might have another solution, i think it's far worse, but it works for small character arrays. The algorithm is as follows:

  1. We assign each letter to a prime number starting from 2. - This will be our look up table.
  2. We find the product of all the numbers. -> O(n)
  3. In a loop -> O(n) we check if product % k*k == 0 if it is, we have found a duplicate k.

This solution stores only 1 number, but will easily overflow. The prime table will take much space though.

EDIT: If we add a constraint that there are only 40 unique characters available, we could use the Euler's quadratic polynomial to find the primes.

P(n) = n*n − n + 41

This does not need any additional space, besides the product.

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If you only store the 1 number, than how do you assign a different prime to each character? –  Sam I am Jun 18 '13 at 20:02
    
@SamIam since we have a limited set of characters, we could create a lookup table before –  Bartlomiej Lewandowski Jun 18 '13 at 20:06
    
But then we're back to the exact same gripe that the OP had with the bucket-sort method. We have O(C) storage space with C being the number of legal characters. –  Sam I am Jun 18 '13 at 20:07
traverse the list for i= 0 to n-1 elements
{
  check for sign of A[abs(A[i])] ;
  if positive then
     make it negative by   A[abs(A[i])]=-A[abs(A[i])];
  else  // i.e., A[abs(A[i])] is negative
     this   element (ith element of list) is a repetition
}

You can easily modify it for 0 in the array. In case of characters you can use its integer code.

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