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Is there no function in the standard library like this?

set<T> set::union(set<T> other)

Or even this?

set<T> getUnion(set<T> a, set<T> b)

set_union is the right function in name only. It can operate on vector also, which means it may not be as efficient as a set-only function.

I am not appending. Appending destroys the original set. I want a new set representing the union.

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marked as duplicate by keyser, Daniel Frey, awesomeyi, Mooing Duck, Barmar May 2 at 21:21

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
@Dlotan I'm not trying to append. I want a new set representing the union. –  Chris Redford May 2 at 21:16
    
Maybe set_union? –  keyser May 2 at 21:17
2  
so someone there talked about: cplusplus.com/reference/algorithm/set_union –  Dlotan May 2 at 21:17
    
@ChrisRedford See the second answer of the duplicate, set_union –  Daniel Frey May 2 at 21:17
    
@ChrisRedford When you append, you get a union. –  juanchopanza May 2 at 21:18

2 Answers 2

up vote 3 down vote accepted

You can use the two-iterator std::set::insert template for this:

template <typename T>
std::set<T> getUnion(const std::set<T>& a, const std::set<T>& b)
{
  std::set<T> result = a;
  result.insert(b.begin(), b.end());
  return result;
}

Note: Following some of the comments suggesting I take one of the parameters by value because I need a copy anyway, I chose this implementation to avoid disallowing RVO, which is not allowed when returning parameter taken by value. To better deal with rvalue arguments, overloads of this function taking rvalue reverences and leveraging move semantics could be provided.

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1  
wouldn't std::set_union be more efficient? –  sehe May 2 at 21:18
3  
Pro tip: when you're passing a const reference to a function then immediately taking a copy of it, just pass by value instead. –  Mark Ransom May 2 at 21:19
1  
@MarkRansom I am returning the copy, and I don't want to inhibit RVO. Copying the argument and returning it would inhibit it. So I don't think the pro tip is a good one in this case. –  juanchopanza May 2 at 21:20
    
@sehe I'm not sure it is. It is linear in comparisons, but each set insertion is log(N). Or did I miss something? –  juanchopanza May 2 at 21:23
    
@juanchopanza insert is guaranteed to attempt insertion, so it could be considerably more costly if you did e.g. b = a; a.insert(b.begin(), b.end()); (it's likely up to QoI though) –  sehe May 2 at 21:24

There's std::set_union.

The example from that page uses vectors and arrays, so it's pretty versatile:

// set_union example
#include <iostream>     // std::cout
#include <algorithm>    // std::set_union, std::sort
#include <vector>       // std::vector

int main () {
  int first[] = {5,10,15,20,25};
  int second[] = {50,40,30,20,10};
  std::vector<int> v(10);                      // 0  0  0  0  0  0  0  0  0  0
  std::vector<int>::iterator it;

  std::sort (first,first+5);     //  5 10 15 20 25
  std::sort (second,second+5);   // 10 20 30 40 50

  it=std::set_union (first, first+5, second, second+5, v.begin());
                                               // 5 10 15 20 25 30 40 50  0  0
  v.resize(it-v.begin());                      // 5 10 15 20 25 30 40 50

  std::cout << "The union has " << (v.size()) << " elements:\n";
  for (it=v.begin(); it!=v.end(); ++it)
    std::cout << ' ' << *it;
  std::cout << '\n';

  return 0;
}

Output:

The union has 8 elements:
 5 10 15 20 25 30 40 50
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