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Inside an algorithm, I want to create a lambda that accepts an element by reference-to-const:

template<typename Iterator>
void solve_world_hunger(Iterator it)
{
    auto lambda = [](const decltype(*it)& x){
        auto y = x;   // this should work
        x = x;        // this should fail
    };
}

The compiler does not like this code:

Error: »const«-qualifier cannot be applied to »int&« (translated manually from German)

Then I realized that decltype(*it) is already a reference, and of course those cannot be made const. If I remove the const, the code compiles, but I want x = x to fail.

Let us trust the programmer (which is me) for a minute and get rid of the const and the explicit &, which gets dropped due to reference collapsing rules, anyways. But wait, is decltype(*it) actually guaranteed to be a reference, or should I add the explicit & to be on the safe side?

If we do not trust the programmer, I can think two solutions to solve the problem:

(const typename std::remove_reference<decltype(*it)>::type& x)

(const typename std::iterator_traits<Iterator>::value_type& x)

You can decide for yourself which one is uglier. Ideally, I would want a solution that does not involve any template meta-programming, because my target audience has never heard of that before. So:

Question 1: Is decltype(*it)& always the same as decltype(*it)?

Question 2: How can I pass an element by reference-to-const without template meta-programming?

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2  
An english error would be nice! :) –  Pubby Jan 18 '13 at 12:05
    
@Pubby I tried my best, feel free to correct :) –  FredOverflow Jan 18 '13 at 12:07
    
@sehe the question is not about top-level const. –  R. Martinho Fernandes Jan 18 '13 at 12:08
1  
@BЈовић Isn’t obvious? The function is supposed to solve world hunger but it doesn’t fulfil its contract. –  Konrad Rudolph Jan 18 '13 at 12:18
1  
@KonradRudolph: if the darn thing compiled then maybe it would, the meaning of ill-formed programs is implementation-defined ;-) –  Steve Jessop Jan 18 '13 at 12:21

1 Answer 1

up vote 4 down vote accepted

Question 1: no, the requirement on InputIterator is merely that *it is convertible to T (table 72, in "Iterator requirements").

So decltype(*it) could for example be const char& for an iterator whose value_type is int. Or it could be int. Or double.

Using iterator_traits is not equivalent to using decltype, decide which you want.

For the same reason, auto value = *it; does not necessarily give you a variable with the value type of the iterator.

Question 2: might depend what you mean by template meta-programming.

If using a traits type is TMP, then there's no way of specifying "const reference to the value type of an iterator" without TMP, because iterator_traits is the only means to access the value type of an arbitrary iterator.

If you want to const-ify the decltype then how about this?

template<typename Iterator>
void solve_world_hunger(Iterator it)
{
    const auto ret_type = *it;
    auto lambda = [](decltype(ret_type)& x){
        auto y = x;   // this should work
        x = x;        // this should fail
    };
}

You might have to capture ret_type in order to use its type, I can't easily check at the moment.

Unfortunately it dereferences the iterator an extra time. You could probably write some clever code to avoid that, but the clever code would end up being an alternative version of remove_reference, hence TMP.

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Okay, I'll bite the bullet and explain iterator_traits then. –  FredOverflow Jan 18 '13 at 12:31
    
@FredOverflow: writing a book/tutorial? –  Steve Jessop Jan 18 '13 at 12:31
    
Nope. If I wrote a book, I'm sure the Lounge would be the first to know ;) –  FredOverflow Jan 18 '13 at 12:33

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