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Reading some examples of range based loops they suggest two main ways 1, 2, 3, 4

std::vector<MyClass> vec;

for (auto &x : vec)
{
  // x is a reference to an item of vec
  // We can change vec's items by changing x 
}

or

for (auto x : vec)
{
  // Value of x is copied from an item of vec
  // We can not change vec's items by changing x
}

Well.

When we don't need changing vec items, IMO, Examples suggest to use second version (by value). Why they don't suggest something which const references (At least I have not found any direct suggestion):

for (auto const &x : vec) // <-- see const keyword
{
  // x is a reference to an const item of vec
  // We can not change vec's items by changing x 
}

Isn't it better? Doesn't it avoid a redundant copy in each iteration while it's a const?

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4 Answers 4

up vote 55 down vote accepted

If you don't want to change the items as well as want to avoid making copies, then auto const & is the correct choice:

for (auto const &x : vec)

Whoever suggests you to use auto & is wrong. Ignore them.

Here is recap:

  • Choose auto x when you want to work with copies.
  • Choose auto &x when you want to work with original items and may modify them.
  • Choose auto const &x when you want to work with original items and will not modify them.
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If you have a std::vector<int> or std::vector<double>, then it's just fine to use auto (with value copy) instead of const auto&, since copying an int or a double is cheap:

for (auto x : vec)
    ....

But if you have a std::vector<MyClass>, where MyClass has some non-trivial copy semantics (e.g. std::string, some complex custom class, etc.) then I'd suggest using const auto& to avoid deep-copies:

for (const auto & x : vec)
    ....
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When we don't need changing vec items, Examples suggest to use first version.

Then they give a wrong suggestion.

Why they don't suggest something which const references

Because they give a wrong suggestion :-) What you mention is correct. If you only want to observe an object, there is no need to create a copy, and there is no need to have a non-const reference to it.

EDIT:

I see the references you link all provide examples of iterating over a range of int values or some other fundamental data type. In that case, since copying an int is not expensive, creating a copy is basically equivalent to (if not more efficient than) having an observing const &.

This is, however, not the case in general for user-defined types. UDTs may be expensive to copy, and if you do not have a reason for creating a copy (such as modifying the retrieved object without altering the original one), then it is preferable to use a const &.

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1  
@MM.: Could you mention what those references are? –  Andy Prowl Mar 2 '13 at 15:34
    
I linked them by numbers in my question, (1)(2)... –  deepmax Mar 2 '13 at 15:36
    
@MM.: I can't see any answer of yours... –  Andy Prowl Mar 2 '13 at 15:40
    
@MM.: OK, that's because those are fundamental types like int, and copying the value is not expensive. Basically, it achieves the same effect as a const &. –  Andy Prowl Mar 2 '13 at 15:44

I'm going to be contrary here and say there is no need for auto const & in a range based for loop. Tell me if you think the following function is silly (not in its purpose, but in the way it is written):

long long SafePop(std::vector<uint32_t>& v)
{
    auto const& cv = v;
    long long n = -1;
    if (!cv.empty())
    {
        n = cv.back();
        v.pop_back();
    }
    return n;
}

Here, the author has created a const reference to v to use for all operations which do not modify v. This is silly, in my opinion, and the same argument can be made for using auto const & as the variable in a range based for loop instead of just auto &.

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@BenjaminLindley: So I can infer that you would also argue against const_iterator in a for loop? How do you ensure that you don't change the original items from a container when you iterate over it? –  Nawaz Mar 2 '13 at 16:42
    
@Nawaz: In a for loop, I use auto. In C++03, yes, I would use const_iterator, but not to ensure that I don't change the items in the container. I would use const_iterator because otherwise it won't compile for const containers. I don't need const_iterator to ensure that I don't change items in a container, because I don't write loop bodies so large that their purpose is not obvious at a glance. –  Benjamin Lindley Mar 2 '13 at 16:51
1  
@BenjaminLindley: Why would your code not compile without const_iterator? Let me guess, the container which you iterator over, is const. But why is it const to begin with? Somewhere you're using const to ensure what? –  Nawaz Mar 2 '13 at 16:54
3  
Advantage of making objects const is like the advantages of using private/protected in classes. It avoids further mistakes. –  deepmax Mar 2 '13 at 17:46
1  
@BenjaminLindley: Oh, I overlooked that. Then in this case, the implementation is silly as well. But if that function did not modify v, the implementation would be fine IMO. And if the loop never modifies the objects it iterates through, it seems right to me to have a ref to const. I see your point though. Mine is that the loop represents a code unit pretty much like the function does, and within that unit there is no instruction which needs to modify the value. Therefore, you can "tag" the whole unit as const, as you would do with a const member function. –  Andy Prowl Mar 2 '13 at 21:42

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