Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I try to generate all permutations with repetition of a number array by putting bound on summation of values.

Example; I have my array {3,4,5,6} and my bound is 11.

I would like to generate all repetitive permutations reaching and just crossing 11 as:

3 3 3 3 //
3 4 3 3 //
3 3 5 3 //
3 3 3 6 //
3 4 4 3 //
4 4 4 //
6 6 //
6 4 3 //
5 5 5 //
..

So the cardinalty doesnt need to be the same as what we have with array. Thanks for help in advance

I tried the following conversion from Java code, I got it, but still C++ gave the error "Unhandled exception":

void permute(int array[], int start[]){
int sum=0;
for (int i=0; i< sizeof(start)/sizeof(start[0]); i++) {
    sum+= start[i];
}
if (sum >= 11) {
     for (int n=0; n< sizeof(start) / sizeof(start[0]); n++)
       cout << start[n] << " ";
       cout << "\n";
    return;
}
for (int i= 0; i < sizeof(array) / sizeof(array[0]) ; i++) {  
    int* newStart = new int[sizeof(start) / sizeof(start[0]) + 1];
    memcpy (newStart, start, sizeof(start) / sizeof(start[0]) + 1); 
    newStart[sizeof(start) / sizeof(start[0])] = array[i];
             permute(array, newStart);
}

}

 void main ()
 {   
  int array[] = {3,4,5,6};
  int newarray[1];
  for (int i=0; i< sizeof(array)/sizeof(array[0]); i++) {
  newarray[0]=array[i];
  permute(array, newarray); 
}
   system("pause");}

Additionally I would like to keep the indice numbers of all permutations and positions of each member. Example:

Permutation[1119] = [ 3 3 5 3],
 Member[1119][1] = 3,
 Member[1119][2] = 3 etc.
share|improve this question
5  
You forget vb.net tag. –  Soner Gönül Jun 24 '13 at 8:57
    
Adding tons of unnecessary tags won't help you finding an answer, you will just get downvotes. –  BackSlash Jun 24 '13 at 8:59
    
what have you tried!be specific with your language.. –  Anirudha Jun 24 '13 at 9:00
    
How much bigger than eleven can the sum be? –  doctorlove Jun 24 '13 at 9:36
    
This was my first post, srry for being that wide. You are right. Actually, I am going to embed this solution in OPL CPLEX, and I will be using C++. So that, I should convert this Java code to C++. @doctorlove the termination is "stopping whenever you add a new one, and it reaches or is bigger than 11" –  cagi Jun 24 '13 at 13:46
show 3 more comments

2 Answers

up vote 0 down vote accepted

This is code for Java:

private static boolean checkConstraint(int[] array) {
    int sum=0;
    for (int i=0; i<array.length; i++) {
        sum+= array[i];
    }
            //we found it, print
    if (sum >= 11) {
        System.out.println(Arrays.toString(array));
        return true;
    }
    return false;
}

public static void permute(int[] array, int[] start){
    if (checkConstraint(start)) {
        return;
    }

    for (int i= 0; i < array.length; i++) {
        int[] newStart= Arrays.copyOf(start, start.length + 1);
        newStart[start.length] = array[i];
        permute(array, newStart);
    }
}

public static void main(String[] args) {
    int[] array= {3,4,5,6};
    for (int i=0; i<array.length; i++) {
        permute(array, new int[] {array[i]});
    }
}
share|improve this answer
add comment

This is not so complicated. Because you're so vague about your language requirements, I took the freedom to invent my own pseudocode:

function generate(int[] array, int bound, int[] solution, int sum)
    if (sum > bound)
        print solution
    else
        for each elt in array
            generate(array, bound, solution ++ [elt], sum + elt)

And call this as

generate([3, 4, 5, 6], 11, [], 0)
share|improve this answer
    
What is 'solution ++ [elt]' supposed to mean? –  Sceptical Jule Jun 24 '13 at 10:51
    
@ScepticalJule array concatenation :) (see Haskell) –  Heuster Jun 24 '13 at 11:33
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.