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I have a funciton like

    void foo(const char *&str)
    {
         cout<<str<<endl;
    }

used like:

    void main()
    {
        foo("hello");
        char *h = "hello"
        foo(h);
    }

but both got an error

"can't convert from const char[] to const char *&"

if I change foo to void foo(const char *), there is no error can't I use const char *& as parameter

share|improve this question
    
I think you would want to use const char *str in the function definition. – simpleBob Apr 11 '13 at 8:15
    
@simpleBob i think he should make it reference to a constant char pointer(const char* const & str) since he is passing rvalue in the first call. should work for second call too – Koushik Shetty Apr 11 '13 at 8:24
    
@Koushik In general, you're right. But in the case of char const*, there's really no point---you might as well just pass by value. (Of course, things like char const* const& as argument type do occur when instantiating templates; e.g. this will be the argument type of std::vector<char const*>::push_back.) – James Kanze Apr 11 '13 at 8:46

You got an error because the conversion is illegal. The reason it is illegal is simple: it breaks const without requiring a const_cast.

As an example of why it is forbidden, imagine that foo was:

void
foo( char const*& str )
{
    str = "abc";
}

int
main()
{
    char* h;
    foo( h );
    *h = '1';
}

If you're not going to modify str in foo, pass by value. Pass by reference will works if you have char const* const&, but there's no reason to use it here. It works because the additional const means that you can bind a temporary to it (as in the case of foo( "hello" ), where the argument is a temporary resulting from the conversion of char const[6] to char const*, and foo( h ) works, because the implicit const conversions will work (in C++, but not in C!), as long as you add const everywhere (and not just at one level).

Also, your code also uses a deprecated conversion to initialize h. You should get a warning here. And void main is an error, and shouldn't compile.

Edit:

Just to be clear, there's no problem with:

void f( char const*& str );

But you can only call it with an lvalue of type char const*; anything else will either result in an illegal implicit const conversion, or try to initialize a non-const reference with an rvalue, which is illegal.

share|improve this answer
    
thanks I got it – user2269250 Apr 11 '13 at 9:12
    
Can you briefly explain what char const* const& does? Why do you need the "const" twice? – akristmann Apr 11 '13 at 9:19
1  
@akristmann There are two things which can be immutable: the pointer itself, and the data it points to. const applies to whatever is to the left of it, so in char const* const&, the first const means that the pointed to char are constant, and the second that the pointer is constant. – James Kanze Apr 11 '13 at 9:49

This will work

int main()
{
    const char *h = "hello";
    foo(h);
}
share|improve this answer
    
"hello" is actually const char *const, so it can't conert to const * – user2269250 Apr 11 '13 at 8:44
    
@user2269250 Firstly conversion from const char* const to const char* is legal. Secondly "hello" is actually char[]. – john Apr 11 '13 at 8:48

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