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How can I implement for instance the following

template <typename ITERATOR> void Swap (ITERATOR a, ITERATOR b) {
  ...
}

so that Swap(a, b) swaps the values pointed at by a and b. In other words: How can I create a third variable without knowing the data type?

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You mean std::swap, not std::sort, right? –  juanchopanza Apr 11 '12 at 14:16
    
Well, these are just examples. I want to do some re-arrangement/re-assignment of a container, where I only pass the iterators and I need some temporary variables. –  Michael Apr 11 '12 at 14:28
    
@juanchopanza: No, I don't think he does mean that. The question doesn't even make sense if you replace std::sort with std::swap, because std::swap doesn't work with iterators. It would just swap the iterators themselves, not the values they point to, and that's clearly not what the OP is going for. –  Benjamin Lindley Apr 11 '12 at 14:30
    
@BenjaminLindley I see. The question just seemed so detatched from it's body that I got confused. First a specific question about std::sort implementation then a more general one swapping... –  juanchopanza Apr 11 '12 at 14:33

5 Answers 5

up vote 6 down vote accepted

How can I create a third variable without knowing the data type?

Use std::iterator_traits<ITERATOR>::value_type

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I didn't know that. Thanks. –  Michael Apr 11 '12 at 14:37

There is iter_swap just for that job:

std::iter_swap(a, b);

Also if you can use c++11 you can use decltype:

std::remove_reference<decltype(*a)>::type c = *a;
*a = *b;
*b = c;
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This is helpful. –  Michael Apr 11 '12 at 14:38
    
@Dani: swap(*a, *b) ? –  Matthieu M. Apr 11 '12 at 15:20

In C++11, the type is std::remove_reference<decltype(*a)>::type, but for declaring a variable, you would use auto.

In C++03, the most reliable way to infer the type of any arbitrary expression is through another template:

// NOTE: This is for illustration only. If you are simply swapping
// values, use 'std::swap' instead of this, since that is specialised
// for many types to avoid unnecessary copy-assignment.
template <typename T> void value_swap(T & a, T & b) {
    T t = a;
    a = b;
    b = t;
}

template <typename I> void iterator_swap(I a, I b) {
    value_swap(*a, *b);
}

Alternatively, for well-behaved iterators (including pointers and standard iterators), the type is available as std::iterator_traits<ITERATOR>::value_type. This won't work if someone has written their own iterator type without either providing the nested types that the default iterator_traits requires or specialising iterator_traits for it.

Some compilers provide non-standard extensions similar to decltype; for example GCC provides typeof. You could use such a thing if you don't need your code to be portable.

By the way, your particular function already exists as std::iter_swap.

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Thanks, that is helpful –  Michael Apr 12 '12 at 10:14
template <typename ITERATOR> void Swap (ITERATOR a, ITERATOR b) {
  using std::swap;
  swap(*a,*b);
}
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quite, but not completely. using std::swap; swap(*a, *b); because user types are not required to specialize std::swap, they might simply provide a swap function within their own namespace and rely on ADL to pick it up. –  Matthieu M. Apr 11 '12 at 15:22

The iterator has a so called trait defining it's value type.

        iterator_traits<ITERATOR>::value_type temp = *a;
        *a = *b;
        *b = temp; 
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