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I was using set_intersection from the STL in C++, and I was wondering if there was any rule on which set would be used when creating the intersection. Or is the behavior undefined, and potentially implementation dependent.

On linux using g++ (ver. 4.4.6), it seems that it always uses the first set that is passed into the set_difference function, but I'm not sure I can rely on this. As you can see from the example below, there is other data in each set member that is not considered in the operator< function.

#include <set>
#include <algorithm>
#include <iostream>
using namespace std;

class myClass {
  public:
    myClass(int val, int data)
        : value(val),
          metaData(data) {}

    // Only consider the value, not metaData
    bool operator<(const myClass &other) const{
        return value < other.value;
    }

    void print() const {
        cout << "Value: " << value << " metaData: " << metaData << endl;
    }

  private:
    int value;
    int metaData;

};

int main() {
    // Create two sets with some data
    set<myClass> set1;
    set<myClass> set2;
    set<myClass> intersect;

    // Set1 has 1, 2, 3, 4
    set1.insert(myClass(1,-10));
    set1.insert(myClass(2,-10));
    set1.insert(myClass(3,-10));
    set1.insert(myClass(4,-10));

    // Set2 has -1, 2, 3
    set2.insert(myClass(-1, 10));
    set2.insert(myClass(2, 10));
    set2.insert(myClass(3, 10));

    set_intersection(set1.begin(), set1.end(),
                   set2.begin(), set2.end(),
                   inserter(intersect, intersect.begin()));

    for_each(intersect.begin(), intersect.end(),
             mem_fun_ref(&myClass::print));

}
// The output of this code is 
// Value: 2 metaData: -10
// Value: 3 metaData: -10
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I don't understand what you're asking here when you say "which set would be used when creating the intersection". –  Oli Charlesworth Dec 21 '11 at 21:22
1  
Also, your question title mentions set_intersection, but your code uses set_difference... –  Oli Charlesworth Dec 21 '11 at 21:23
    
Oops, I meant set_intersection in the code. I tested it again just to be sure, and it does take from the first set. –  MikeT Dec 21 '11 at 21:31
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2 Answers

up vote 5 down vote accepted

Assuming you're asking about set_intersection as in the question title, rather than set_difference as in the code sample, the C++ standard is explicit:

C++03 §25.3.5.3[lib.set.intersection]/5

if an element is present in both ranges, the one from the first range is copied

Current standard makes this point even stronger, mostly for the sake of multisets which are now stable with regards to the order of equivalent keys:

C++11 §25.4.5.3[set.intersection]/5

If [first1,last1) contains m elements that are equivalent to each other and [first2, last2) contains n elements that are equivalent to them, the first min(m, n) elements shall be copied from the first range to the output range, in order.

As for set_difference, it simply copies the elements of the first sorted sequence that are not present in the second.

share|improve this answer
    
Thanks, that's exactly what I was looking for! I fixed the code and comment, I meant to use set_intersection, not set_difference. –  MikeT Dec 21 '11 at 21:34
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From here,

The difference of two sets is formed by the elements that are present in the first set, but not in the second one.

I know of no instance where this site has provided incorrect information.

share|improve this answer
    
Thanks, I accidentally used set_difference in the code, I meant to use set_intersection. –  MikeT Dec 21 '11 at 21:32
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