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I cannot get the following stringstreamm to compile

stringstream qss;

qss.operator <<  "some text " ::stringstream.operator << DDateTime::date2Oracle(dFrom) ::stringstream.operator <<  " more text " ::stringstream.operator <<  DDateTime::date2Oracle(dUntil);

If I just use the << operator without the ::stringstream.operatorit complains about the operator being ambigious, now it complains about incorrect syntax...

error C2143: syntax error : missing ';' before 'std::stringstream'

EDIT:

error C2593: 'operator <<' is ambiguous c:\Program Files\Microsoft Visual Studio .NET 2003\Vc7\include\ostream(434): could be 'std::basic_ostream<_Elem,_Traits>::_Myt &std::basic_ostream<_Elem,_Traits>::operator <<(std::basic_ostream<_Elem,_Traits>::_Mysb *)' with [ _Elem=char, _Traits=std::char_traits ]

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We need the second line where alternative is described :) –  vava Jun 24 '10 at 13:30
1  
We need to know the type that DDateTime returns. –  Puppy Jun 24 '10 at 13:31
    
string DDateTime::date2Oracle(DATE Date) –  Tony The Lion Jun 24 '10 at 13:33
1  
Yeah, I bet it is something that have conversion to std::string and to something else as well. –  vava Jun 24 '10 at 13:33

7 Answers 7

up vote 2 down vote accepted

Well, it is obvious that whatever type DDateTime::date2Oracle(dFrom) returns does not implement << operator. So you will have to write one yourself.

As for the syntax, first of all you have to call it just like a function which it actually is:

stringstream qss;
operator<<(
     (operator<<(qss <<  "some text ", 
                 DDateTime::date2Oracle(dFrom)) << " more text "),
      DDateTime::date2Oracle(dUntil));

And second of all, stringstream defined in std namespace, so you have to write it like std::stringstream or ::std::stringstream. ::stringstream will look for it in global namespace and there is no such class defined there.

BTW, operator<< usually is implemented as free function, so qss.operator<< wouldn't work.

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explanation+1, also try what agsamek suggested. –  rubenvb Jun 24 '10 at 13:19
    
date2Oracle() returns a std::string –  Tony The Lion Jun 24 '10 at 13:21
    
@Tony, then check error message again. stringstream does work with std::string out of the box and the issue is somewhere else. –  vava Jun 24 '10 at 13:25

You need to call the operator like a function.

std::stringstream s;

operator<<(s, "Your string")
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How do I concatenate more then one to the same stringstream??? –  Tony The Lion Jun 24 '10 at 13:15
    
Call it multiple times. –  Louis Marascio Jun 24 '10 at 13:18
    
You might also need to define an appropriate operator overload for your type: std::ostream& operator<< (std::ostream& os, const DDateTime& d) {...} –  Louis Marascio Jun 24 '10 at 13:19

Cast to / construct string explicitly:

qss << "some text " << string(DDateTime::date2Oracle(dFrom)) 
    <<  " more text " <<  string(DDateTime::date2Oracle(dUntil));
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No, this is the wrong way. There must exist an overload of operator<< that takes a type compatible with the return type of the date2Oracle function as second argument. –  Philipp Jun 24 '10 at 13:19
    
No - there need to be a conversion to string, which most probably exists. If you have downvoted my answer - please consider upvoting instead. –  agsamek Jun 24 '10 at 13:25
2  
I haven't downvoted. But in C++ you do conversions to string by implementing operator<< and then applying a stringstream or boost::lexical_cast, not the other way round! Also, string(...) is an old-style cast which should be avoided in C++. –  Philipp Jun 24 '10 at 13:29
    
+1 for the comment. Syntax is a matter of taste. –  agsamek Jun 24 '10 at 13:31

What's stopping you from doing:

stringstream s;
s << "some text" << (DDateTime::date2Oracle(dFrom)) << "more text" << (DDateTime::date2Oracle(dUntil)) ;
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Because of a compiler error, I said that in my question... –  Tony The Lion Jun 24 '10 at 13:16
    
Why is this downvoted? It's the correct syntax. If this doesn't work, the call to the date2Oracle function is ambiguous and the question is in fact unrelated to stringstreams or operator<<. –  Philipp Jun 24 '10 at 13:18
    
@Tony the important part is that I've enclosed the DDateTime::date2Oracle in parenthesis. Now it can't be confused by the :: operator. –  wheaties Jun 24 '10 at 13:19
2  
But :: and () have a much higher predecence than <<. This can't be the problem. –  Philipp Jun 24 '10 at 13:20

Go really funky:

qss.operator <<("some text ");
qss.operator <<(DDateTime::date2Oracle(dFrom));
qss.operator <<(" more text "); 
qss.operator <<(DDateTime::date2Oracle(dUntil));

And you'll probably get a better idea where the ambiguity is.

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will that produce the same effect as doing qss << "text" << Somefunc() << "more text"; ??? –  Tony The Lion Jun 24 '10 at 13:18
    
operator<< should return the stream so it can be used by the next operator<<. This is called chaining and should be the same as the function-notation –  stefaanv Jun 24 '10 at 13:40

The operator keywords don't belong here, leave them out:

qss << "some text" << DDateTime::date2Oracle(dFrom) << " more text " <<  DDateTime::date2Oracle(dUntil);

This should be perfectly valid and unambiguous, unless the date2Oracle function is ambiguously overloaded.

The correct pattern for implementing operator<< for a type T is:

template<typename Char, typename Traits>
std::basic_ostream<Char, Traits>
operator<<(std::basic_ostream<Char, Traits>& stream, const T& object) {
  // now put something into the stream
  return stream;   // return stream << xyz ... is also possible
}
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Shouldn't be enough with qss << "some text " << DDateTime...?

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