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I am working in iOS, and I am facing one problem. I have 6 letters, and I want to find all strings that can be generated by these 6 letters. The sequence and length of the string doesn't matter here, also the meaning of the string doesn't matter because we can check the string with a dictionary to find if it is a valid word or not.

So is there any algorithm to find this?

For example:

Input 6 letters are : N T L P A E

Expected output will be:

plan
net
planet
lan
tea
lap
..
..

Here the words in the output are only the valid words, but the output should contain all possible words, even invalid words.

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4  
You do realize that you are implementing a solution in N! complexity (for 8 letters you will have to test 40,320 words ...) –  Dan Shelly Apr 4 '13 at 5:51
    
Serach math.stackexchange.com for your mathematical problem (YES, It's a math problem first of all. You need the algo for that). After that try implementing solution by coding. At this point, If you find any specific programming related query; fell free to ask it over here. –  AlwaysThere Apr 4 '13 at 7:25
    
I think you need a simple Dictionary Search algorithm, you can keep valid dictionary look-ups in a Trie –  Khaled A Khunaifer Apr 4 '13 at 8:42
    
@DanShelly, I know solution will be consist of more string, so I restricted it to only 6 letters, i.e.I should get 720 string only. –  prabhu Apr 4 '13 at 9:27
    
@Bhargavi, I know the simple method, that is taking 3 nested loops, and go on constructing the strings but it is not sufficient in this case, I want all possible combinations of that letters. –  prabhu Apr 4 '13 at 9:34

2 Answers 2

This should probably solve this:

+ (void) logPermutations:(NSArray*)objects
{
    if (objects == nil || [objects count] == 0) {
        return;
    }
    NSMutableArray* copy = [objects mutableCopy];
    [self logPermutations:copy logedSoFar:@""];
}

+ (void) logPermutations:(NSMutableArray*)objects
              logedSoFar:(NSString*)log
{
    if (objects == nil || [objects count] == 0) {
        return;
    }
    NSUInteger count = [objects count];
    for (NSUInteger i = 0; i < count; ++i) {
        id removed = [objects objectAtIndex:i];
        [objects removeObjectAtIndex:i];
        NSString* newlog = [NSString stringWithFormat:@"%@%@",log,[removed description]];
        NSLog(@"%@",newlog);
        [self logPermutations:objects logedSoFar:newlog];
        [objects insertObject:removed atIndex:i];
    }
}
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up vote -1 down vote accepted

I got the solution, I want something like following.

-(NSArray*)totalWords:(NSArray*)letters
{
    NSMutableArray *output=[[NSMutableArray alloc]init];

    for (int i=0; i<letters.count; i++)
    {
        for (int j=0; j<letters.count; j++)
        {
            if (i==j) continue;
         for (int k=0; k<letters.count; k++)
         {
             NSString *str=[NSString stringWithFormat:@"%@%@%@",letters[i],letters[j],letters[k]];
             if(i!=j && j!=k && i!=k &&[self checkmeaning:str])
                 [output addObject:str];
            for (int l=0; l<letters.count; l++)
            {
                NSString *str=[NSString stringWithFormat:@"%@%@%@%@",letters[i],letters[j],letters[k],letters[l]];
                if(i!=j && j!=k && i!=k && l!=i && l!=j && l!=k &&[self checkmeaning:str])
                    [output addObject:str];
                for (int m=0; m<letters.count; m++)
                {
                    NSString *str=[NSString stringWithFormat:@"%@%@%@%@%@",letters[i],letters[j],letters[k],letters[l],letters[m]];
                    if(i!=j && j!=k && i!=k && l!=i && l!=j && l!=k && m!=i && m!=j && m!=k && m!=l &&[self checkmeaning:str])
                        [output addObject:str];
                    for (int n=0; n<letters.count; n++)
                    {
                        NSString *str=[NSString stringWithFormat:@"%@%@%@%@%@%@",letters[i],letters[j],letters[k],letters[l],letters[m],letters[n]];
                        if(i!=j && j!=k && i!=k && l!=i && l!=j && l!=k && m!=i && m!=j && m!=k && n!=i && n!=j && n!=k &&n!=m &&n!=l && m!=l&&[self checkmeaning:str])
                        [output addObject:str];
                    }
                }
            }
         }
        }
     }

    NSLog(@"count :%i",[output count]);
    NSLog(@"output array :\n%@",output);
    return output;
}
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1  
-1 this is highly localized and it will work only with a 6-character input. It might have solved your problem, but it's not a good solution. –  Gabriele Petronella Oct 25 '13 at 20:17

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