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While building a little sample program with Microsoft VisualStudio 2008 I noticed an odd thing about the deduction of types passed to templates. Consider this example:

template<class T>
void f( T v ) {
    x; // trigger a compile error
    (void)v;
}

template<class T>
void g( T v ) {
    f( v );
}

void h() {
  int i;
  g<const int &>( i );
}

Compiling this example using cl /c foo.cpp yields a compile error (as intended). What's interesting is the value of the 'T' template parameter. Here's what VisualStudio 2008 prints:

mini.cpp(3) : error C2065: 'x' : undeclared identifier
        mini.cpp(9) : see reference to function template instantiation 'void f<int>(T)' being compiled
        with
        [
            T=int
        ]
        mini.cpp(14) : see reference to function template instantiation 'void g<const int&>(T)' being compiled
        with
        [
            T=const int &
        ]

Note how in g, the type of the argument is const int & but in f it's just int. Apparently the reference-to-const part was stripped while deducing the type to use when instantiating the f template. When adjusting the example so that f is invoked like

f<T>( v );

the type is const int & in both f and g. Why is that? Is this specified behaviour? I secretly relied on the type of the v function argument to be passed to f but apparently it's not.

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C++ Templates + MSVC++ = Bad combination. –  Prasoon Saurav Nov 12 '10 at 12:40
2  
@Prasoon: GCC deduces the same type. Of course in GCC, the questioner's code triggers a compile error in f the template, before it gets anywhere near thinking about instantiating it, because GCC does two-phase compilation correctly. x isn't dependent on a template parameter, so should be rejected in the first phase (as in GCC), not the second (as in MSVC). But change x to v = 1;, and it's easily seen that GCC doesn't instantiate f with const int& unless you explicitly specify f<T>(v) in g. –  Steve Jessop Nov 12 '10 at 12:45

2 Answers 2

up vote 5 down vote accepted

The answer is that although the variable v has type const int &, the expression v is an lvalue expression with type const int.

litb provides the text (5/6): "If an expression initially has the type “reference to T” (8.3.2, 8.5.3), the type is adjusted to “T” prior to any further analysis, the expression designates the object or function denoted by the reference, and the expression is an lvalue."

An "argument" is "an expression in the comma-separated list bounded by the parentheses in a function call expression" (1.3.1). So in 14.8.2.1:

  • "the corresponding argument type of the call (call it A)" is const int.
  • "If A is a cv-qualified type, the top-level cv-qualifiers of A's type are ignored for type deduction" (hence, int).
  • "the deduction process attempts to find template argument values that will make the deduced A identical to A" (so T is int)
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you're probably right. The standard terminology with A and P got me completely confused =| –  icecrime Nov 12 '10 at 13:11
    
@icecrime: me too, it's not a part of the standard I'm that familiar with. I think that the adjustments to "P" mean that if f was declared template<typename T> void f(const T v), or template<typename T> void f(T &v), then T would be used for type deduction. I'm not sure I properly understand it, though. –  Steve Jessop Nov 12 '10 at 13:14
    
Even if this would be not 100% right, it's close enough. "Obviously" if we look at the expression v+v, everybody would expect it to behave like integer addition. There it doesn't make sense to treat int& differently from int. –  MSalters Nov 12 '10 at 13:59
    
See 5/6 for the definition. –  Johannes Schaub - litb Nov 12 '10 at 14:18
    
@GMan's 1st Fan: (formerly Johannes, formerly litb): nice one, thanks –  Steve Jessop Nov 12 '10 at 15:38

http://accu.org/index.php/journals/409 is a rather extensive article, but it explains the process. From the template parameters, a parameter type P is derived, and this is matched to an argument type A. The relevant part is where it describes how a target type A is derived from the function argument: for non-array types, references are simply stripped. Hence, if the type of the argument is int&, then the target type A is simply int.

This is the simple reason: because the standard tells us so. What is the rationale? As it happens, the article has a footnote pointing that out too. In your example, typeid(v)==typeid(const int). When used in non-lvalue contexts, reference types behave like non-reference types.

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