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I have the friends in a class definition obviously and to make it clearer, have removed the implementation code etc...

class Ref
{
    public:
        Ref(char* s, size_t l) : _s(s), _l(l) {}
    private:
        char* _s;
        size_t _l;
};

class foo
{
    public:
        friend stringstream& operator>>(std::stringstream& s, uint8_t& v) { return s; }
        friend stringstream& operator>>(std::stringstream& s, const Ref& r) { return s; }
    private:
        std::stringstream ss;
        void example(void)
        {
            char b[256];
            Ref r(b, sizeof(b));
            uint8_t i;

            ss >> i >> r;    <------ Why do I get an error here?
            ss >> r >> i;    <------ But this one seems to compile fine.
        }
};
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3  
You say your friends are in the class definition but in your code they are not. Which one is right, your statement or the code? –  juanchopanza Sep 30 '13 at 14:03
2  
When asking about an error, always include the full error message. –  Angew Sep 30 '13 at 14:04
    
After changing l(_l) to _l(l), removing the friend keywords (since they can't appear outside a class definition) and changing char* b[256] to char b[256] and sticking the relevant code in a main(), this compiled just fine for me. –  GuyGreer Sep 30 '13 at 14:07
1  
@GuyGreer Are you sure? The results of ss >> i should be of type std::istream, and there's no >> for istream >> Ref. –  James Kanze Sep 30 '13 at 14:09
    
@JamesKanze He had overloaded (in the global namespace) operator>> for uint8_t and std::stringstream to return a std::stringstream & and the compiler found that one before the one in namespace std in <sstream>. After his edit, however, now this does not compile because this same overload is now in class foo the overload is never considered and the expected one in <sstream> is found through ADL. –  GuyGreer Sep 30 '13 at 14:17

2 Answers 2

up vote 6 down vote accepted

Why are you overloading on std::stringstream? You should always be overloading on std::istream or std::ostream (depending on the direction). It's exceedingly rare that std::stringstream would even be used (std::istringstream or std::ostringstream would usually be more appropriate), and even if they were, operator>> will normally return a std::istream&, not a std::stringstream&.

EDIT:

With regards to why one seemed to work:

ss >> r >> i;

is

operator>>( operator>>( ss, r ), i );

You have defined an operator>> which takes a stringstream& and Ref const&, so the inner call is valid. And your operator>> returns a stringstream&, which isA std::istream, so the function operator>>( std::istream&, unsigned char ) can be called. Where as:

ss >> i >> r;

is

operator>>( operator>>( ss, i ), r );

The inner call returns an std::istream&, and there is no overloaded operator>> for std::istream&, Ref const&.

As stated above: overloaded >> should always take std::istream& as there first argument, and return an std::istream&.

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perhaps you could comment on why his overload friend stringstream& operator>>(std::stringstream& s, uint8_t& v) doesn't get called. –  GuyGreer Sep 30 '13 at 14:21
    
@GuyGreer Maybe because it isn't visible. If he defined it in a class, then it can only be found with ADL, and ADL will only look in the namespace(s) the operator is in and in std:: for something like uint8_t. (But of course, my fundamental answer stands: you overload on std::istream&, and not on std::stringstream---a class I've never used.) –  James Kanze Sep 30 '13 at 14:26
    
@GuyGreer And looking at his complete code: he's invoking the >> operator in a context where all of his >> will be found, so he'll get an ambiguous overload for ss >> i. –  James Kanze Sep 30 '13 at 14:28
    
Agreed about the std::istream& and your answer, this was more for completeness, since the OP probably expected this overload to be found and used as well. –  GuyGreer Sep 30 '13 at 14:30
    
@GuyGreer That's the fun thing about ADL: sometimes you find it, sometimes you don't. Depending on the context where he tried his two statements, one or the other would fail, for different reasons. –  James Kanze Sep 30 '13 at 14:34
ss >> i >> r;   <-------  why do I get an error here?

You forgot to tell us what the error is, or to post the actual code that gives you the error. When I fix the obvious errors in the posted code, I get:

cannot bind ‘std::basic_istream<char>’ lvalue to ‘std::basic_istream<char>&&’

The first problem is that ss >> i won't call your overload; you can't overload the streaming operators for built-in types like uint8_t. So this will call the overload defined by the standard library, which returns a reference to istream, not stringstream. Your operator expects a reference to stringstream, so the second operator will fail.

You should follow the convention and work with a generic ostream rather than a specific stringstream:

friend std::istream& operator>>(std::istream& s, const Ref& r) { return s; }

If you actually want the operator to do anything useful, then you'll need to remove the const from the second argument.

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It's okay, the const is intentional because it's a temporary object and only it's internal methods are used by the operator and nothing is modified. –  The Welder Sep 30 '13 at 14:22

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