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Yesterday I've seen an interesting question here on SO about structured binding.
We can sum up it as it follows. Consider the example code below:

#include <tuple>
#include <type_traits>

int main() {
    auto tup = std::make_tuple(1, 2);
    auto & [ a, b ] = tup;
    // the following line won't compile for a isn't a reference
    // static_assert(std::is_reference_v<decltype(a)>);
}

In this case decltype(a) is int (probably) because of this bullet (working draft):

if e is an unparenthesized id-expression naming a structured binding [...], decltype(e) is the referenced type as given in the specification of the structured binding declaration

Here is a snippet on wandbox provided by @Curious in the comments for those that are interested. It shows that actually a isn't a reference, nothing more.
So far so good for the original question, OP asked why it was int instead of int & and the standard says that looked like an acceptable answer.

Anyway, I'd like to know why the committee decided so. At the end of the day, a refers to an element in the tuple and I can modify that element through a. In other terms, the declaration of a looks like the one of a reference, it behaves similarly to a reference but it's not a reference.

I can live with this, but I'd like to know what are the reasons behind that. Why decltype(a) cannot be simply int &? Is there a meaningful reason that a profane can understand?

  • Can you extend your example to actually demonstrate that a is not a reference? It should be fairly easy to static_assert something like std::is_reference<decltype(a)>::value. – Toby Speight Jun 22 '17 at 9:53
  • @TobySpeight In the original question there is the example you are asking for. That being said, you can simply print out std::is_reference_v<decltype(a)> and it will return 0, as well as std:.is_same_v<decltype(a), int &>, while std:.is_same_v<decltype(a), int>will return 1. That's quite simple. – skypjack Jun 22 '17 at 9:55
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    @TobySpeight use an online compiler wandbox.org/permlink/BKLeZRzPubEsPC5l? – Curious Jun 22 '17 at 10:00
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    I absolutely hate how a and b are not references here – Curious Jun 22 '17 at 10:04
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    In section 11.5.3, there's text saying "Given the type Ti designated by std​::​tuple_­element<i, E>​::​type, each vi is a variable of type “reference to Ti” initialized with the initializer, where the reference is an *lvalue reference if the initializer is an lvalue and an rvalue reference otherwise; the referenced type is Ti.*" That seems to me to suggest that auto & [ ] ought to declare references... – Toby Speight Jun 22 '17 at 10:16
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I wrote this yesterday:

decltype(x), where x is a structured binding, names the referenced type of that structured binding. In the tuple-like case, this is the type returned by std::tuple_element, which may not be a reference even though the structured binding itself is in fact always a reference in this case. This effectively emulates the behavior of binding to a struct whose non-static data members have the types returned by tuple_element, with the referenceness of the binding itself being a mere implementation detail.

  • Damnit, I've read that page yesterday, probably before the edit. – skypjack Jun 22 '17 at 10:31
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    So, to put it in simple words, it's like some_struct.member? – Daniel Jour Jun 22 '17 at 11:08
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    So, auto[a,b] = exp and auto&[a,b] = exp have very different behavior (for many cases of exp), yet decltype(a) in both cases is identical? – Yakk - Adam Nevraumont Jun 22 '17 at 22:16
  • @Yakk seems like it, DanielJour and T.C.'s analogy explains this pretty nicely, I think I understand this now – Curious Jun 23 '17 at 15:00
  • @T.C. if you wrote that could you maybe try and move that explanation somewhere near the top of the page? Because this makes what structured bindings actually do a lot clearer (to me at least, I suspect to others as well) and a lot of what is on that page there is hard to understand (for mortals like me) – Curious Jun 23 '17 at 15:13
-1

This topic has been covered before (look in the structured-bindings tag) and the behavior you're talking about is even addressed in the second answer. However, the rationale is spelled out in p0144r2 section 3.5:

Should the syntax be extended to allow const/&-qualifying individual names' types?

For example:

auto [&x, const y, const& z] = f(); // NOT proposed

We think the answer should be no. This is a simple feature to store a value and bind names to its components, not to declare multiple variables. Allowing such qualification would be feature creep, extending the feature to be something different, namely a way to declare multiple variables.

If we do want to declare multiple variables, we already have a way to spell it:

 auto val    = f();
 T& x        = get<0>(val);
 T2 const y  = get<1>(val);
 T3 const& z = get<2>(val);
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    I don't think this is relevant: the question is why the reference qualifier on the structured binding as a whole does not apply to both declared elements thereof - not why those elements can't be individually qualified. – underscore_d Jun 23 '17 at 15:03

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