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Is it ever possible that in the following setup

template <typename T>
inline void id() {
    //...
}

template <typename T>
bool check() {
    return &id<T> == &id<T const>;
}

check will return true for some T? Does it depend on what is being done inside id? What does the standard have to say about this?

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It is possible to return false. Try it out! –  juanchopanza Sep 30 '12 at 11:25
    
@juanchopanza my bad, of course i meant true. –  yuri kilochek Sep 30 '12 at 11:29
    
Another complication is that MS VC++ will often merge template code when the generated machine code happen to be identical. Not standards compliant, but saves space. –  Bo Persson Sep 30 '12 at 13:43

2 Answers 2

up vote 7 down vote accepted

Sure. Try const int or int& or void().


There's a rule that top-level const qualifiers collapse if you get multiple of them through a typedef or a template argument, which means check<int const>() will return true.

[normative text pending]

Then there's a rule that ignores top-level const on things it doesn't work on, like references or function types. That means check<int&> and check<int()> will return true.

§8.3.2 [dcl.ref] p1

Cv-qualified references are ill-formed except when the cv-qualifiers are introduced through the use of a typedef (7.1.3) or of a template type argument (14.3), in which case the cv-qualifiers are ignored.

and

§4.4 [conv.qual] p3

[ Note: Function types (including those used in pointer to member function types) are never cv-qualified (8.3.5). —end note ]

§8.5.3 [dcl.fct] p6

The effect of a cv-qualifier-seq in a function declarator is not the same as adding cv-qualification on top of the function type. In the latter case, the cv-qualifiers are ignored.

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In each case, what the standard says about it is that the versions of those types "with const added" are the same type again. –  Steve Jessop Sep 30 '12 at 11:43
    
I added some normative text, but I can't seem to find the general wording that says repeated cv-qualifiers introduced by typedefs or template arguments are ignored. :( –  Xeo Sep 30 '12 at 11:53

I would expect that the functions are non-equal. The standard definitely does not require them to be identical although I suspect that it allows them to be identical (I wouldn't quite know where to look for the corresponding clause).

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