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Today I wrote an expression:

"<" + message_id + "@" +  + ">"

and got surprised that it actually compiled. (PS message_id is a QString, it would also work with an std::string)

I often do things like that, leave out a variable as I'm working and I expect the compiler to tell me where I'm still missing entries. The final would look something like this:

"<" + message_id + "@" + network_domain + ">"

Now I'd like to know why the + unary operator is valid against a string literal!?

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1  
what type is message_id? – klm123 Dec 7 '13 at 8:44
1  
pointer arithmetic probably. – Rapptz Dec 7 '13 at 8:45
    
@klm123 I updated the question. – Alexis Wilke Dec 7 '13 at 8:45
up vote 8 down vote accepted

Unary + can be applied to arithmetic type values, unscoped enumeration values and pointer values because ...

the C++ standard defines it that way, in C++11 §5.3.1/7.

In this case the string literal, which is of type array of char const, decays to pointer to char const.

It's always a good idea to look at the documentation when one wonders about the functionality of something.


“The operand of the unary + operator shall have arithmetic, unscoped enumeration, or pointer type and the result is the value of the argument. Integral promotion is performed on integral or enumeration operands. The type of the result is the type of the promoted operand.”

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1  
Could you cite C++11 §5.3.1/7 please? – klm123 Dec 7 '13 at 8:51
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@AlexisWilke You're right. I'm unsure why the + + is compiling, and this answer really doesn't answer it. – Rapptz Dec 7 '13 at 8:57
2  
@Rapptz: C++ follows the "maximum munch" rule where the lexer scans along as long as it has a valid token. The space between the two instances of + causes the lexer to treat them as two separate tokens. Thus they cannot constitute a ++ operator (and the OP is obviously aware of that, asking about unary + he has identified it as such, and only wonders why it can be applied to a literal string). – Cheers and hth. - Alf Dec 7 '13 at 9:00
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Your answer doesn't explain it (for me personally), and I don't feel like giving a full fledged answer. The reason is compiles is because "<" + message_id + "@" would result in <test@ is message_id is test. Then you're left with message_id + + ">", that means that ">" (which is of type const char[2] decays to const char* meaning you're left with message_id + ">" with ">" as a const char*. The expression wouldn't have worked without message_id. That's really all I wanted to know. – Rapptz Dec 7 '13 at 9:03
1  
I wonder what was the rationale for allowing unary + on pointers. It is not in C, but it is in C++98. – AnT Dec 7 '13 at 9:04

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