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I'm trying to count the number of calls within a recursive permutation function.

I've written a function that fills a queue with all the permutations but I can't seem to figure out how to maintain an accurate count.

Ultimately i'd like the function to return a subset of the permuatations specified by lbound and ubound arguments, and to do so I think i need someway to keep an internal count.

Using the size of the returned queue will not work since i'd like the function to be able to handle permutations too big to hold in memory.

For this code i'd like the count to be returned as 100.

#include <vector>
#include <iostream>;

using namespace std;

int& Permutations(vector<vector<int>> param, vector<vector<int>> &perm, int index=0)
{
    static vector<int> iter;
    static int count = 0;

    if (index == param.size())
    {
        perm.push_back(iter);   // add permutation to queue
        count++;
        return count;
    }

    for (int i=param[index][0]; i<=param[index][1]; i+=param[index][2])
    {
        if (iter.size() > index) iter[index] = i;
        else iter.push_back(i);
        Permutations(param, perm, index+1); // recursive function
    }
}

void main()
{
    vector<vector<int>> params; // vector of parameter vectors

    vector<int> param1, param2;

    int arr1[3] = {0,9,1};  // range for each parameter vector
    int arr2[3] = {0,9,1};  // specified as lbound, ubound, step

    param1.insert(param1.end(),arr1,arr1+3);
    param2.insert(param2.end(),arr2,arr2+3);

    params.push_back(param1);
    params.push_back(param2);

    vector<vector<int>> queue;  // queue of generated permutations

    int permcount = Permutations(params,queue);

    cout << "the permutation count is " << permcount << endl;
    cin.get();
}
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3 Answers 3

up vote 2 down vote accepted
int foo(int count,/*Other Params*/) {
/*Calucation*/
 if (!terminatingCondition) {
  foo(count++,/*Other Params*/);
 }
 logger.log("foo was called " + count + "times");
 return /*calcualtion*/;
}
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actually ended up using this solution, thanks –  darckeen Feb 20 '11 at 21:26

Using a static count will not work, because it's not going to ever be reset (and will cause problems if you ever go multi-threaded).

Instead, how about this:

int Permutation(/* params */)
{
    int count = 1;  // Count ourself

    for (whatever)
    {
        count += Permutation(whatever);  // Count cumulative sum from recursion
    }

    return count;
}

Each call to Permutation() returns the total number of calls that were made below it in the call tree. As we unwind, all the counts from the sub-trees get summed together, to eventually produce the final return value.

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Much more elegant than adding another parameter to the signature. Didn't even think of that. –  Vivin Paliath Feb 20 '11 at 17:16
    
+1 You could make static work, but not with multiple threads, and in any case you should use the stack as you say, that's why we invented them! –  David Heffernan Feb 20 '11 at 17:17
    
works great thanks –  darckeen Feb 20 '11 at 17:53

I'm just trying to answer the question by ignoring your actual algorithm purpose. The two statics should be moved to argument references, or you don't have a good way to reset their values.

void Permutations(vector<vector<int>> param, vector<vector<int>> &perm, vector<int> &iter, int &count, int index=0)
{
    ++count;
    // ...
}
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