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Here is a standard function to print the permutations of characters of a string:

void permute(char *a, int i, int n)
{
   int j;
   if (i == n)
     printf("%s\n", a);
   else
   {
        for (j = i; j < n; j++) //check till end of string
       {
          swap((a+i), (a+j));
          permute(a, i+1, n);
          swap((a+i), (a+j)); //backtrack
       }
   }
} 

void swap (char *x, char *y)
{
    char temp;
    temp = *x;
    *x = *y;
    *y = temp;
}

It works fine but there is a problem, it also prints some duplicate permutations, exapmle:

if string is "AAB"

the output is:

AAB
ABA
AAB
ABA
BAA
BAA

This is having 3 duplicate entries as well.

Can there be a way to prevent this to happen?

--

Thanks

Alok Kr.

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is using a std::set an undesired overhead? –  André Puel Aug 2 '11 at 20:01
1  
Sounds like homework. You should tag it as such if it is. –  bitmask Aug 2 '11 at 20:07
    
Sir, Its not a homework, I am just working on some standard algorithms and i came across this question. Also thanks for std::set as I am not that much good in c++ so didnt know about that. –  Kumar Alok Aug 2 '11 at 20:11
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9 Answers

up vote 3 down vote accepted

Take notes which chars you swapped previously:

 char was[256];
 /*
 for(j = 0; j <= 255; j++)
    was[j] = 0;
 */
 bzero(was, 256);
 for (j = i; j <= n; j++)
 {
    if (!was[*(a+j)]) {
      swap((a+i), (a+j));
      permute(a, i+1, n);
      swap((a+i), (a+j)); //backtrack
      was[*(a+j)] = 1;
    }
 }

This has to be the fastest one from the entries so far, some benchmark on a "AAAABBBCCD" (100 loops):

native C             - real    0m0.547s
STL next_permutation - real    0m2.141s
share|improve this answer
    
Are you sure you're comparing like with like? Once you remove the printing, and let the STL version modify a char array in situ, is your version still faster? –  fizzer Aug 2 '11 at 21:52
    
I won't remove printing because I have no idea what optimizations the compiler will do then. you can replace stream out with printf, and you are right that does make a huge difference. also, like vs like: my code does just temporary modify the char array, at the end it restores the original state. –  Karoly Horvath Aug 2 '11 at 22:17
    
OK - point taken about restoring state. –  fizzer Aug 2 '11 at 22:31
    
Is your code working fine for AAB –  Kumar Alok Aug 2 '11 at 22:32
    
@Kumar: sure. don't you see the logic? your code gives duplicates because it uses all duplicated characters for each position. –  Karoly Horvath Aug 2 '11 at 22:35
show 3 more comments

Standard library has what you need:

#include <algorithm>
#include <iostream>
#include <ostream>
#include <string>
using namespace std;

void print_all_permutations(const string& s)
{
    string s1 = s;
    sort(s1.begin(), s1.end()); 
    do {
        cout << s1 << endl;
    } while (next_permutation(s1.begin(), s1.end()));
}

int main()
{
    print_all_permutations("AAB");
}

Result:

$ ./a.out
AAB
ABA
BAA
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I would do it the following way: First, I generate "groups" of characters (i.e. AABBBC yields two groups: (AA) and (BBB) and (C).

First, we iterate over all distributions of AA onto the n characters. For each distribution found, we iterate over all distributions of BBB onto the n-2 remaining characters (not occupied by an A). For each of these distributions involving As and Bs, we iterate over all distributions of C onto the remaining free character positions.

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I really like this, because you don't generate the duplicates at all. –  bitmask Aug 2 '11 at 20:07
1  
That was my thought as well. However, actually implementing it might become a bit cumbersome. –  phimuemue Aug 2 '11 at 20:08
    
No, I think you can even do this in-place, and quite efficient, if you pass along an array of empty slots (if you fill a slot you move the last array entry to the respective slot in the index-array). –  bitmask Aug 2 '11 at 20:14
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You can use std::set to ensure uniqueness of the results. That is if it is C++ (because you tagged it as such).

Otherwise - go through the list of the results manually and remove duplicates.

You'll have to save the results and post-process them of course, not print immediately as you do now.

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Thanks, This will help, but I would like the code to work in c too, as I have tagged it with c also. So the other way is fine with me. –  Kumar Alok Aug 2 '11 at 20:08
2  
@Kumar - is it C or C++? C++ code may not work when compiled with a C compiler, C code may not work with a C++ compiler. Writing a C code doesn't make it C++, decide which language you're using. –  littleadv Aug 2 '11 at 20:09
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Another approach could be:

  1. Presort the array.

  2. This will ensure that all duplicate are now consecutive.

  3. So, we just need to see the previous element which we we fixed (and permuted others)

  4. if current element is same as previous, don't permute.

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It would quite simple if you just think it as a problem where you need to store all the permutations for some future use.

SO you'll have an array of permuted strings.

Now think of a new problem, which is also an standard one where you need to remove the duplicates from array.

I hope that helps.

share|improve this answer
    
this will create n! permutations, then do a non-trivial filter –  Karoly Horvath Aug 2 '11 at 20:29
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@Kumar, I think what you want is something like the following:

#include <stdio.h>
#include <string.h>

/* print all unique permutations of some text. */
void permute(int offset, int* offsets, const char* text, int text_size)
{
    int i;

    if (offset < text_size) {
            char c;
            int j;

            /* iterate over all possible digit offsets. */
            for (i=0; i < text_size; i++) {
                    c=text[i];
                    /* ignore if an offset further left points to our
                       location or to the right, with an identical digit.
                       This avoids duplicates. */
                    for (j=0; j < offset; j++) {
                            if ((offsets[j] >= i) &&
                                (text[offsets[j]] == c)) {
                                    break;
                            }
                    }

                    /* nothing found. */
                    if (j == offset) {
                            /* remember current offset. */
                            offsets[offset]=i;
                            /* permute remaining text. */
                            permute(offset+1, offsets, text, text_size);
                    }
            }
    } else {
            /* print current permutation. */
            for (i=0; i < text_size; i++) {
                    fputc(text[offsets[i]], stdout);
            }
            fputc('\n', stdout);
    }
}

int main(int argc, char* argv[])
{
    int i, offsets[1024];

    /* print permutations of all arguments. */
    for (i=1; i < argc; i++) {
            permute(0, offsets, argv[i], strlen(argv[i]));
    }

    return 0;
}

This code is C, as requested, it's pretty fast and does what you want. Of course it contains a possible buffer overflow because the offset buffer has a fixed size, but this is just an example, right?

EDIT: Did anyone try this out? Is there a simpler or faster solution? It's disappointing noone commented any further!

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void permute(string set, string prefix = ""){
    if(set.length() == 1){
            cout<<"\n"<<prefix<<set;
    }
    else{
            for(int i=0; i<set.length(); i++){
                    string new_prefix = prefix;
                    new_prefix.append(&set[i], 1);
                    string new_set = set;
                    new_set.erase(i, 1);
                    permute(new_set, new_prefix);
            }
    }
}

And simply use it as permute("word");

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Algorithm steps:

  1. Store the given string into temporary string say "temp"
  2. Remove duplicates from temp string
  3. And finally call "void permute(char *a, int i, int n)" function to print all permutation of given string without duplicates

I think, this is best and efficient solution.

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