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According to the C++11 standard, is the following program well-formed and portable C++?

int main(int argc, char const* const* argv) {}
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2 Answers 2

up vote 8 down vote accepted

No. In a pure portable C++ program, the argv argument, if present, has no const modifiers.

Edit: See section 3.6.1.2 of the C++11 draft standard, which (in the version I have before me) states:

An implementation shall not predefine the main function. This function shall not be overloaded. It shall have a return type of type int, but otherwise its type is implementation-defined. All implementations shall allow both of the following definitions of main:

int main(){ /*...*/ }

and

int main(int argc, char* argv[]) { /* ... */ }

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Depends on what you mean by portable. An evil C++ implementation could reject it on the grounds that its signature, int(int,char const*const*), is different from one of the required allowed signatures, int() and int(int,char**). (An evil implementation could seemingly reject auto main(int argc,char* argv[]) -> int or, indeed, any definition of main where the body isn't { /* ... */ })

However this isn't typical. I don't know of any implementations where adding a const would cause a problem calling main, and since C++11 added the bit about 'similar' types you won't violate the strict aliasing rule when accessing a char** object through a char const * const * variable.

So while a conforming implementation could technically reject it, I think it will be portable to any implementation you might care to use.

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Gosh, I didn't realise that adding similar types to the legal aliases was intended to enable functions whose supplied arguments and formal parameters have mis-matched types ;-) But yes, it'll probably just work (TM). –  Steve Jessop Jun 27 '12 at 0:02
    
@SteveJessop It's not intended to enable that, and in fact doesn't enable that in general because adding const to a formal parameter will affect name mangling. The reason this works for main is because main is typically exempt from mangling (because you're not allowed to overload main anyway). The addition of similar types only means that you don't automatically get undefined behavior for violating the strict aliasing rule when you access a char** as a char const * const *. It worked fine before C++11 on all implementations I know of, but it was technically UB. Now it shouldn't be UB –  bames53 Jun 27 '12 at 0:39
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Do you happen to have a source or standard quote on auto main(int argc,char* argv[]) -> int being a different signature? Is int main(int argc, char** argv) not also a different signature then? –  Anton Golov Jun 27 '12 at 7:37
    
@AntonGolov: I think the standard is notoriously fuzzily-worded here. All it says is that those two definitions of main are allowed. It doesn't say those two parameter lists, or those two signatures, which is why you can even facetiously argue (as bames53 does) that the body must be /* ... */. However, the previous sentence talks about the type of main, and the type of a function declared auto main(int, char**) -> int is the same as the type of one of the examples given. I'd say that in a sensible reading of the standard, any main with the same signature as either example is OK. –  Steve Jessop Jun 27 '12 at 8:49
    
@bames53: I was joking, but if name-mangling is the only remaining obstacle then you can always use extern "C". Then declaring any function incorrectly in another TU, and calling it using a prototype with char ** when it is defined char const *const, is about as likely to work as this thing with main is. I wouldn't advise it though, I think the "right" thing to do if you want const-qualified argv is just to write int main(int argc, char **argv) { return my_main(argc, argv); } and define my_main with the const. Do a conversion, even if similar types don't actually need one. –  Steve Jessop Jun 27 '12 at 8:51

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