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template<typename T>
struct Wrap {
  Wrap(T *p) {}
};

#ifdef TEMPLATE
template<typename T>
void foo (Wrap<T> t) {}  // version-1

#else
void foo (Wrap<int> p) {} // version-2
#endif

int main () {
  foo(new int);
}

When the #else part is compiled, the compilation goes fine and the version-2 is selected. If I try to compile #ifdef part, I expect that the version-1 should be selected. However compiler gives error as,

error: no matching function for call to `foo(int*)'

Am I touching the non-deducible part of template foo ? If yes, then can anyone clarify what is the exact rule of non-deducible region ?

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1 Answer 1

The type of an class template cannot be determined from arguments passed to its constructor. To know which constructors are available, the compiler must have already chosen which Wrap to instantiate.

In the #else block you have explicitly chosen to instantiate Wrap<int>, so the compiler knows to use the implicit Wrap<int>(int*) constructor.


Perhaps informally: a type is not deducible, if deducing it presupposes knowing what the to-be-deduced type is.

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