Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Looking at n3092, in §6.5.4 we find the equivalency for a range-based for loop. It then goes on to say what __begin and __end are equal to. It differentiates between arrays and other types, and I find this redundant (aka confusing).

It says for arrays types that __begin and __end are what you expect: a pointer to the first and a pointer to one-past the end. Then for other types, __begin and __end are equal to begin(__range) and end(__range), with ADL. Namespace std is associated, in order to find the std::begin and std::end defined in <iterator>, §24.6.5.

However, if we look at the definition of std::begin and std::end, they are both defined for arrays as well as container types. And the array versions do exactly the same as above: pointer to the first, pointer to one-past the end.

Why is there a need to differentiate arrays from other types, when the definition given for other types would work just as well, finding std::begin and std::end?


Some abridged quotes for convenience:

§6.5.4 The range-based for statement

— if _RangeT is an array type, begin-expr and end-expr are __range and __range + __bound, respectively, where __bound is the array bound. If _RangeT is an array of unknown size or an array of incomplete type, the program is ill-formed.

— otherwise, begin-expr and end-expr are begin(__range) and end(__range), respectively, where begin and end are looked up with argument-dependent lookup (3.4.2). For the purposes of this name lookup, namespace std is an associated namespace.

§24.6.5 range access

template <class T, size_t N> T* begin(T (&array)[N]);

Returns: array.

template <class T, size_t N> T* end(T (&array)[N]);

Returns: array + N.

share|improve this question
    
@GMan: I recalculated your reputation, as requested. –  Bill the Lizard Apr 17 '10 at 1:04
add comment

1 Answer

up vote 15 down vote accepted

This avoids a corner-case with ADL:

namespace other {
  struct T {};
  int begin(T*) { return 42; }
}

other::T a[3];
for (auto v : a) {}

Because ADL finds other::begin when calling begin(a), the equivalent code would break causing a confusing compile error (along the lines of "can't compare int to other::T*" as end(a) would return a T*) or different behavior (if other::end was defined and did something likewise unexpected).

share|improve this answer
6  
Nice :) It also enables users to use the loop without including any headers first. –  Johannes Schaub - litb Apr 15 '10 at 21:01
1  
Ah, I see now. :) –  GManNickG Apr 15 '10 at 21:06
    
@Johannes: Shouldn't be a problem; if you include a container header, you get begin & end too, according to 24.6.5 in the FCD. Types not in the stdlib should make any custom begin/end available similarly, so only in exceedingly rare cases would it be required. (But, damn, that's a major annoyance if you run into it.) –  Roger Pate Sep 21 '10 at 5:23
    
@Roger iterating over an int[] is such a case where a header would be required then, i mean. –  Johannes Schaub - litb Sep 21 '10 at 10:58
2  
One line summary: looking for begin and end via ADL may not find std::begin and std::end. –  Ben Voigt Nov 22 '10 at 1:09
show 1 more comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.