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I have a template function:

template<typename T>
void foo(const T& value) { bar(value); x = -1; }

I want to specialize it for a set of types:

template<>
void foo<char>(const char& value) { bar(value); x = 0; }
template<>
void foo<unsigned char>(const unsigned char& value) { bar(value); x = 1; }

It works ok. When I compile this:

template<>
void foo<char*>(const char*& value) { bar(value); x = 2; }

I get an error:

error C2912: explicit specialization; 'void foo(const char *&)' is not a specialization of a function template

Is it possible to specialize with char* pointer type parameter without typedef'ing it?

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2 Answers 2

up vote 16 down vote accepted

Sure. Try this:

template<>
void foo<char*>(char* const& value) {...}

This is because const char* means pointer to const char, not a const pointer to char.

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You should generally just avoid function template specializations: you'll have far less problems if you provide non-template overloads instead. Read more: Why Not Specialize Function Templates?

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Yes, redesigned to use overloading after realizing it myself. –  pingw33n Aug 27 '09 at 20:42
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