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How to take an intersection between 2 QSets where the first does not lose elements, but just the resulting intersection is returned?

The reason is that I am trying to perform many intersections with some sets, but had to find out the hard way that the elements were lost in the process.

QSet<int> a, b;
a.insert(1);
a.insert(2);         // { 1, 2 }
b.insert(1);         // { 1 }
a.intersection(b);   // { 1 }  
a                    // { 1 }
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just make a copy! Overhead is almost none since Qt uses "copy on write" pattern for all containers. This will do the trick: c = QSet<int>(a).intersection(b);. This is how the operator & is defined for QSet see source code. –  Marek R Sep 19 '13 at 8:34

2 Answers 2

up vote 6 down vote accepted

intersect modifies the set you apply it to. If you don't want to do that, don't use intersect.

The overloaded operator& returns a new QSet that's the intersection of two QSets. There's also an assignment operator operator&=.

QSet is hash-based. If you're working with sets of small integers and you're concerned with efficiency, QBitArray might work better.

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2  
Beat me to it. QSet<int> c = a & b; –  Slavik81 Sep 18 '13 at 22:28
    
+1 How could I miss the & operator? –  Daniel Castro Sep 18 '13 at 22:30
    
In fact they are large sets with large integers. I am not sure on the use of the operators... –  PascalvKooten Sep 18 '13 at 22:34
    
@Dualinity: How large? A QBitArray should have size proportional to the maximum value; a QSet should have size proportional to the number of members of the set (so the set { 999999999999 } would make for a large QBitArray but a small QSet). A QBitArray is likely to be smaller and faster for relatively dense sets of integers. What are you not sure about with respect to the operators? –  Keith Thompson Sep 18 '13 at 22:37
    
I found out that indeed the operator&() does what I was looking for! I have indices between 1 and 6000000 as integers. What would be the advice? I have to do 13000x6000 intersections... –  PascalvKooten Sep 18 '13 at 22:40

If you don't want to copy the original set and then intersect it, you could create a function that creates a new set from the intersection:

template<class T>
QSet<T> intersectSets(const QSet<T>& a, const QSet<T>& b) {
   QSet<T> result;
   foreach(const T& value, a)
      if (b.contains(value))
         result.insert(value);
   return result;
}
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Any idea on the speed? Would it beat QVector using contains? –  PascalvKooten Sep 18 '13 at 22:27
    
QSet uses a hash table internally, so I guess it will be much faster than QVector as the number of elements grows –  Daniel Castro Sep 18 '13 at 22:28
    
It is actually incredibly slow... –  PascalvKooten Sep 18 '13 at 22:34
    
@Dualinity How many elements contains each of the sets you're intersecting? –  Daniel Castro Sep 18 '13 at 22:36
    
Varying from 0 to 100000+ –  PascalvKooten Sep 18 '13 at 22:37

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