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auto reference in c++11

The more I learn C++, the more I have come to realize that so far (almost; see below) everything in it basically just makes sense. I find that I don't really have to learn any rules by heart because everything behaves as expected. So the main thing becomes to actually understand the concepts, and then the rest takes care of itself.

For instance:

const int ci = 0;
auto &a = ci;       //automatically made const (const int &)

This works and makes sense. Anything else for the type of a would just be absurd.

But take these now:

auto &b = 42;       //error -- does not automatically become const (const int)
const auto &c = 42; //fine, but we have to manually type const

Why is the first an error? Why doesn't the compiler automatically detect this? Why does the const have to be typed out manually? I want to really understand why, on a fundamental level so that things make sense, without having to learn any rigid rules by heart (see above).

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marked as duplicate by Xeo, Zoidberg, Fanael, Veger, Abhijit Jan 16 '13 at 15:38

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
42 isn't of type const int, and can't be, since it's an integer literal. It's just an int. (If auto got const int out of that, though, auto would probably be a lot more frustrating to use, too.) – Ryan O'Hara Jan 16 '13 at 15:27
3  
Try auto&& b = 42. && is maaaaagic – Yakk Jan 16 '13 at 15:29
up vote 12 down vote accepted

The type of 42 is int, not const int.

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1  
"then this would be an error" -- No it wouldn't. The top level const would simply be dropped for i. As can be demonstrated if you replace 42 with an actual const int. – Benjamin Lindley Jan 16 '13 at 16:05
    
@BenjaminLindley: You're quite right. Silly example deleted - thanks. – RichieHindle Jan 17 '13 at 9:03

The auto keyword in C++11 behaves very close to how template type deduction works (going back to your concepts approach). If you state the type deduction in terms of template argument deduction it becomes more apparent (I believe):

template <typename T>
void f(T);
template <typename T>
void g(T&);

const int i;
f(i);              --> T deduced to be int
g(i);              --> T deduced to be const int

Basically you are creating a new variable initialized with an existing variable. Const-ness of the original from which you copy is orthogonal to const-ness of the destination object.

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