34

This question refers to:

When should I use the new ranged-for and can I combine it with the new cbegin/cend?

Based on that question, to force the use of cbegin() and cend(), one needs to do, for example:

for (auto& v: const_cast<decltype(container) const>(container))

That's a lot of boilerplate code for a construct that was supposed to eliminate it. Is there some more compact way to do it? The reason for my question is, that an implicitly shared container might take my use of begin() as a clue to detach itself.

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  • 3
    The ranged for loop was added for convenience, not as a replacement for the existing for-statement. Perhaps this is one case where the old for loop is more useful? – Bo Persson Mar 20 '13 at 8:53
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    You know, you could just type const auto &v. – Nicol Bolas Mar 20 '13 at 9:19
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    @NicolBolas AFAIK that's not enough. Sure, you won't be able to modify v, but the container and the iterators won't be const for it. – user1095108 Mar 20 '13 at 9:31
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    @user1095108: Is that really important? The container isn't const in your version either, as the non-const container must still be accessible within the loop. So if you wanted to change it, you can. As for the iterators, you can't access them. So it doesn't matter that they're not const_iterators. So it's not like you can break things in some way. – Nicol Bolas Mar 20 '13 at 10:12
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    @user1095108: But there's no functional difference if you make the auto& const. Well, except if T happens to be a pointer. – Nicol Bolas Mar 20 '13 at 11:23
30

Update: std::as_const will be in C++17, in the <utility> header.

Prior to C++17, there's no built-in syntax for it; however, you can easily write a convenience wrapper:

template<typename T> constexpr const T &as_const(T &t) noexcept { return t; }
for (auto &v: as_const(container))

Note that this calls begin() const rather than cbegin() specifically; the Standard container general requirements specify that cbegin() and begin() const behave identically.

If your container treats non-const iteration specially, it might make sense for it itself to have a member function:

const Container &crange() const noexcept { return *this; }
for (auto &v: container.crange())
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  • 1
    I think you should have prepended the constexpr specifier to your as_const() trick. – user1095108 Jun 30 '13 at 0:48
  • @user1095108, why would one need constexpr there? Container's content may change. – Yola Jan 17 '16 at 12:07
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    @Yola constexpr means that it can be used within constant expressions, it doesn't mean that it can't change. – ecatmur Jan 18 '16 at 9:59
  • Have you tested this? The const overload of begin is called, but not cbegin in my case. See cpp.sh/7yr3 – mbschenkel Sep 13 '17 at 9:37
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    @mbschenkel it's a largely irrelevant distinction, given that any container treating cbegin() differently to begin() const is defective. It's reasonable to use cbegin as a shorthand for begin() const. – ecatmur Sep 19 '17 at 9:14
13
const auto& const_container = container;

for (const auto& v: const_container ) {
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  • 3
    Where Type is spelled auto? – Ben Voigt Aug 21 '13 at 19:41
  • @BenVoigt Thanks, I've changed to using auto for the container reference, and improved the name a little, too. – Peter Wood Mar 10 '14 at 15:00
  • I suggest explicitly const-qualifying &v for additional clarity. – Boinst Jul 22 '15 at 0:09
7

The range-based for loop never uses cbegin() or cend(). (Therefore there is no way to force it.) There are surprisingly many rumors to the contrary; some believe that cbegin() and cend() are used, but never try whether the same code would compile without begin() and end(). A trivial example follows. Presumably, only begin and end will be printed out, no matter how many const_casts are added.

#include <iostream>

class Iterable {
  struct Iterator {
    bool operator !=(const Iterator &) { return false; }
    int operator *(){ return 0; }
    Iterator& operator ++() { return *this; }
  };
public:
  Iterator cbegin() const noexcept {
    std::cout << "cbegin" << std::endl;
    return Iterator{};
  }
  Iterator cend() const noexcept {
    std::cout << "cend" << std::endl;
    return Iterator{};
  }
  Iterator begin() const noexcept {
    std::cout << "begin" << std::endl;
    return Iterator{};
  }
  Iterator end() const noexcept {
    std::cout << "end" << std::endl;
    return Iterator{};
  }
};

int main() {
  Iterable a;
  const Iterable b;
  for (auto i : a) {}
  for (auto i : b) {}
  for (const auto &i : a) {}
  for (const auto &i : b) {}
  return 0;
}
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  • many (all) are knowledgeable enough to know that a call to .begin() on a const container is equivalent to calling cbegin() – user1095108 Sep 10 '17 at 15:19
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    No, it is not. Simply because you are free to provide an implementation of cbegin() completely different form begin() if you so decide. The key point of my answer: The original question is based on a wrong assumption that the range-based for loop calls cbegin() or cend() under certain conditions. In fact it doesn't. That's all. – Andrej Podzimek Sep 11 '17 at 3:23
  • It usually does the equivalent thing, of the container is const. – user1095108 Sep 11 '17 at 20:27
  • This is the only correct answer to this OP's question, pointing out that the original question was wrong in the first place. – shuhalo Sep 15 '18 at 0:09

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