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After watching Louis Brandy talk at CppCon 2017 I was shocked to discover that this code actually compiles:

#include <string>

int main() {

    std::string(foo);

    return 0;
}    

And for some reason std::string(foo) it is identical to std::string foo i.e. declaring a variable. I find it absolutely counterintuitive and can't see any reason for C++ to work that way. I would expect this to give an error about undefined identifier foo.

It actually makes expressions like token1(token2) have even more possible interpretations than I previously thought.

So my question is: what is the reason for this horror? When is this rule actually necessary?

P.S. Sorry for the poorly worded title, please, feel free to change it!

marked as duplicate by user0042, Columbo c++ Dec 29 '17 at 21:57

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  • 2
    It's silly, but valid with the latest standard, yes. – user0042 Dec 29 '17 at 21:21
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    This syntax works for any type, not just string objects. See here – PaulMcKenzie Dec 29 '17 at 21:23
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    @PaulMcKenzie so if x is already defined, int(x) is type cast but if it's not defined, int(x) is a variable declaration. Seriosly, what the hell? – Amomum Dec 29 '17 at 21:32
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    @Cheersandhth.-Alf actually the most prominent occurense of this thing is std::unique_lock(m_mutex); So I can't not think about it. – Amomum Dec 29 '17 at 21:34
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    @Amomum std::unique_lock(m_mutex); would be std::unique_lock m_mutex, which is ill-formed because class template argument deduction fails. So, you'll get a compiler error (which is what I meant by "fine" - as in, it wont' do the wrong thing) – Barry Dec 29 '17 at 21:55
13

Since this question is tagged , the direct answer is that, from [stmt.ambig]:

There is an ambiguity in the grammar involving expression-statements and declarations: An expression-statement with a function-style explicit type conversion as its leftmost subexpression can be indistinguishable from a declaration where the first declarator starts with a (. In those cases the statement is a declaration.

And, similarly, for functions, in [dcl.ambig.res]:

The ambiguity arising from the similarity between a function-style cast and a declaration mentioned in [stmt.ambig] can also occur in the context of a declaration. In that context, the choice is between a function declaration with a redundant set of parentheses around a parameter name and an object declaration with a function-style cast as the initializer. Just as for the ambiguities mentioned in [stmt.ambig], the resolution is to consider any construct that could possibly be a declaration a declaration.

Hence:

Why oh why is std::string("foo") so different from std::string(foo)

The former cannot be a declaration. The latter can be a declaration, with a redundant set of parentheses. Thus, the former isn't a declaration and the latter is.

The underlying issue is that, grammaticaly, declarators can start with a ( which could make it indistinguishable from a function-style explicit type conversion. Rather than come up with arbitrary complex rules to try to determine what the user meant, the language just picks one, and it's easy enough for the user to fix the code to actually do what he meant.

  • 1+. Is the first considered an r-value? – Raindrop7 Dec 29 '17 at 21:41
  • @KillzoneKid I'd say it's more along the lines of following the specification (to consider any construct that could possibly be a declaration a declaration) more strongly than normal human expectation, as opposed to the compiler 'thinking' the programmer is an idiot. – Harrand Dec 29 '17 at 21:43
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    Uhm, I removed my downvote after considering that you're probably on to the right place in the standard, just that the standard's wording (talking about function declarations) is misleading. – Cheers and hth. - Alf Dec 29 '17 at 21:46
  • @Barry: :-) ....' – Cheers and hth. - Alf Dec 29 '17 at 21:48
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    @KillzoneKid Yep, that declares an int named a, initialized with 1 and then prints it. – Barry Dec 29 '17 at 21:53

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