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If I have the following two loops:

std::vector<int> v;

for(auto i : v)
  //do something with i

for(auto& j : v)
  //do something with j

When I hover over i, intellisense shows it as int i (as expected). However, when I hover over j I don't get int& as I expected to, but rather

std::_Simple_types<std::_Wrap_alloc<std::_Vec_base_types<int, std::allocator<int> >::_Alloc>::value_type>::value_type &j

What is this complicated definition? Is it the same as int&? If not, what is it? And if it is, why can it deduce just int for i, but not int& for j?

share|improve this question
    
What type does the standard say that j has to be? Surely it must be int& (or something typedefed to an int&) to allow write-back to the original vector? – Bathsheba Jun 5 '14 at 12:06
up vote 10 down vote accepted

The standard states in 6.5.4 [stmt.ranges]:

For a range-based for statement of the form

for ( for-range-declaration : expression ) statement

let range-init be equivalent to the expression surrounded by parentheses

( expression )

In each case, a range-based for statement is equivalent to

{
    auto && __range = range-init;
    for ( auto __begin = begin-expr,  __end = end-expr;  __begin != __end; ++__begin ) {
        for-range-declaration = *__begin;
        statement
    }
}

So you can see that in your case the types of i and j are deduced from the type of *it where it is a std::vector iterator. std::vector iterators are implementation defined, however the result of *it is not.


As indicated in the comments, a std::vector iterator is a forward iterator, and after 24.2.5/1 [forward.iterators]:

A class or pointer type X satisfies the requirements of a forward iterator if

  • ...
  • if X is a mutable iterator, reference is a reference to T; if X is a const iterator, reference is a reference to const T,

Here reference is used in 24.4.4/2 [iterator.iterators] to indicate the return type of *it.


Thus for your case the standard requires the type of i to be int and the type of j to be int&. This is probably the case for MSVC++, and intellisense is just not able to correctly resolve the type.


Edit: Fixed the answer regarding the return type when dereferencing iterators.

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2  
No, that type is int, it is just a complex typedef to it. *it for vector must be T& outside of the specialization bool. – Yakk Jun 5 '14 at 13:13
    
@Yakk: Please give me a reference in the standard. – Danvil Jun 5 '14 at 13:53
    
@Danvil C++11 24.2.5 Forward Iterator requirements paragraph 1: "if X is a mutable iterator, reference is a reference to T; if X is a const iterator, reference is a reference to const T, ..." – Casey Jun 5 '14 at 14:12
    
@Danvil 24.2.5 Forward Iterators -- reference is a reference to T. 24.2 Iterators -- *a returns reference. Random access iterators are forward iterators, and vector's iterators are random access iterators (barring bool, that evil specialization). For more, we have 23.3.6.1/2: reference is value_type& and 23.2.3/16 (table 101) has v.front() returning reference and equivalent to *a.begin(). (a different reference, but std::vector<T>::reference is T& for non-bool T, I can find that if you care) – Yakk Jun 5 '14 at 14:14
    
Ok, will adapt the answer. – Danvil Jun 5 '14 at 14:40

Yes, it is int. All that means is intellisense got confused and gave up.

Intellisense is not perfect: you can even get it to red squiggly compiling code.

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In this case however intellisense is probably correct, it's just that the type is a typedef to int. – Dani Jun 5 '14 at 12:15
    
Yeah, best to turn off the red squiggles. C++ can be hard enough as it is without being given a glimpse into how hard Microsoft find it! – Alex Jun 5 '14 at 12:16
1  
@Poldie Actually, since VS2010, Intellisense has been powered by an EDG front-end. So it's probably more capable than the VC compiler's front-end, but has features disabled so that they match those of the VC version it ships with. – Praetorian Jun 5 '14 at 12:40
    
@praetorian I have code that always squiggles at me: maybe they turned off too much, but it is not that hard to confuse with SFINAE style functions. – Yakk Jun 5 '14 at 13:14
    
Did you actually mean "yes, it is int&"? – Danvil Jun 5 '14 at 15:09

IntelliSense is giving you a peek into the implementation of std::vector. That is a complicated way of saying reference to std::vector<int>::value_type or, in this case, reference to int.

share|improve this answer
    
The best answer here - quick and to the point – egur Jun 5 '14 at 21:03

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