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How can I select a random element in an std::set?

I naively tried this:

int GetSample(const std::set<int>& s) {
  double r = rand() % s.size();
  return *(s.begin() + r); // compile error
}

But the operator+ is not allowed in this way.

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1  
Be carefull of using modulus (%) in random number generation the distribution may not be exactly even (last element is less likely than the others). –  Loki Astari Jun 16 '10 at 18:09
    

3 Answers 3

up vote 18 down vote accepted

You could use the std::advance method.

#include <set>
#include <algorithm>

int main() {
  using namespace std;
  // generate a set...
  set<int> s;
  for( int i = 0; i != 10; ++i ) s.insert(i);

  set<int>::const_iterator it(s.begin());

  // 'advance' the iterator 5 times
  advance(it,5);
}
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Oh, I forgot about that method. Thanks, that's exactly what I need. –  Frank Jun 16 '10 at 11:30
1  
@dehman: mind, though: it's O(n). –  xtofl Jun 16 '10 at 11:32
4  
Any solution will be O(N). Proof is left as an exercise, hint: how many elements of a std::set can be reached in constant time? –  MSalters Jun 16 '10 at 13:09
7  
Could be O(logN). std::set is stored in some kind of tree, there could potentially be a solution that just goes down on one of the branches, and is done. –  Kiscsirke Sep 23 '13 at 16:37
int GetSample(const std::set<int>& s) {
  double r = rand() % s.size();
  std::set<int>::iterator it = s.begin();
  for (; r != 0; r--) it++;
  return *it;
}

would be one way of doing it, although not pretty;

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If the random access is important and you can live with O(N) average effort for the insertion, then the workaround given in this paper might be convenient.

The main idea there is to use a sorted vector, and then for lookup the function std::lower_bound. This, the lookup takes O(log N) just as in a normal set. Further, (random) insertion takes O(N), as all following elements must be shifted just like in a normal vector (and possibly a reallocation is performed). Insertion at the back, however, is constant (except for the reallocation. You can avoid this by calling reserve() with a large enough storage).

Finally, the main point of the question: Random access is O(1). Just draw a random number i from a uniform distribution in [0, V.size()-1], and return the corresponding element V[i].

Here is the code basis out of the paper, which implements this sorted vector. Extend it as needed:

template <class T, class Compare = std::less<T> >
struct sorted_vector {
 using std::vector;
 using std::lower_bound;
 vector<T> V;
 Compare cmp; 
 typedef typename vector<T>::iterator iterator;
 typedef typename vector<T>::const_iterator const_iterator;
 iterator begin() { return V.begin(); }
 iterator end() { return V.end(); }
 const_iterator begin() const { return V.begin(); }
 const_iterator end() const { return V.end(); }

 //...if needed, implement more by yourself

 sorted_vector(const Compare& c = Compare()) : V(), cmp(c) {}
 template <class InputIterator>
 sorted_vector(InputIterator first, InputIterator last, Const Compare& c = Compare())
 : V(first, last), cmp(c)
 {
 std::sort(begin(), end(), cmp);
 }

 //...

 iterator insert(const T& t) {
     iterator i = lower_bound(begin(), end(), t, cmp);
     if (i == end() || cmp(t, *i))
        V.insert(i, t);
      return i;
 }
 const_iterator find(const T& t) const {
     const_iterator i = lower_bound(begin(), end(), t, cmp);
      return i == end() || cmp(t, *i) ? end() : i;
 }
};

For a more sophisticated implementation, you might also consider this page.

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