15

A range-based for statement is defined in §6.5.4 to be equivalent to:

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

where range-init is defined for the two forms of range-based for as:

for ( for-range-declaration : expression )         =>   ( expression )
for ( for-range-declaration : braced-init-list )   =>   braced-init-list

(the clause further specifies the meaning of the other sub-expressions)

Why is __range given the deduced type auto&&? My understanding of auto&& is that it's useful for preserving the original valueness (lvalue/rvalue) of an expression by passing it through std::forward. However, __range isn't passed anywhere through std::forward. It's only used when getting the range iterators, as one of __range, __range.begin(), or begin(__range).

What's the benefit here of using the "universal reference" auto&&? Wouldn't auto& suffice?

Note: As far as I can tell, the proposal doesn't say anything about the choice of auto&&.

  • 1
    This way you can use r-values in the range. – Let_Me_Be Nov 5 '12 at 22:06
  • "As far as I can tell, the proposal doesn't say anything about the choice of auto&&." And that proposal also uses the range library, which doesn't exist in C++11. – Nicol Bolas Nov 5 '12 at 22:11
  • 2
    For future reference, the property of an expression described by e.g. 'lvalue' or 'rvalue' is its value category. – Luc Danton Nov 6 '12 at 12:34
19

Wouldn't auto& suffice?

No, it wouldn't. It wouldn't allow the use of an r-value expression that computes a range. auto&& is used because it can bind to an l-value expression or an r-value expression. So you don't need to stick the range into a variable to make it work.

Or, to put it another way, this wouldn't be possible:

for(const auto &v : std::vector<int>{1, 43, 5, 2, 4})
{
}

Wouldn't const auto& suffice?

No, it wouldn't. A const std::vector will only ever return const_iterators to its contents. If you want to do a non-const traversal over the contents, that won't help.

  • Oops, I actually meant to ask if const auto& would suffice. Won't this bind to anything too? – Joseph Mansfield Nov 5 '12 at 22:10
  • @sftrabbit: It won't bind to a non-const l-value. A const std::vector will only return const iterators. – Nicol Bolas Nov 5 '12 at 22:11
  • Thanks. This means that auto&& is also useful for binding to anything without making it const, in addition to forwarding. – Joseph Mansfield Nov 5 '12 at 22:19
  • 6
    Just to clarify: for (const auto& v : std::vector<int>{1, 43, 5, 2, 4}) {} is possible for a const traversal. – Snps Aug 9 '13 at 11:02
  • But then why would you want to modify the temporary vector you are iterating over inside the loop? – fyzix Feb 19 '18 at 8:55

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