Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

As in this question, I'm experimenting to stream via a class using SBRM/RAII, so

SBRM(x) << "test";

could do some extra's in the destructor, but my template knowledge seems to be limited.

What I have (made simpler for clarity) is:

#include <iostream>
#include <sstream>

class SBRM
{
public:
  SBRM(int j) : i(j) {}
  ~SBRM() { std::cout << "SBRM(" << i << "): " << oss.str() << std::endl; }

  template<typename T> SBRM& operator<<(T& in) { oss << in; return *this; }
  // SBRM& operator<<(const long long& in) { oss << std::hex << "0x" << in; return *this; }
  SBRM& operator<<(const double& in) { oss << in; return *this; }
  SBRM& operator<<(const void* in) { oss << in; return *this; }

private:
  int i;
  std::ostringstream oss;
};


int main()
{
  std::string ttt = "world";
  const int i = 3;
  SBRM(1) << "Hello";
  SBRM(2) << ttt;
  SBRM(3) << 0x1234567890123ll; 
  SBRM(4) << &i;
  SBRM(5) << 5;
  SBRM(6) << 0.23;
  SBRM(7) << i;
  SBRM(8) << 5 << ", " << ttt << ", " << &i;
}

This sort of works:

SBRM(1): Hello
SBRM(2): world
SBRM(3): 3.20256e+14
SBRM(4): 0xbf8ee444
SBRM(5): 5
SBRM(6): 0.23
SBRM(7): 3
SBRM(8): 5, world, 0xbf8ee444

but my main concern is: why does the compiler require me to overload the template when using (non-string) literals?
Are there any tricks to avoid this or am I taking a wrong approach? Other suggestions are welcome because I now resorted to using a macro for

NOT_QUITE_SBRM_MACRO(3, "At least, " << 5 << ", this works");

The issue is seen with gcc 4.1.2. and 4.4.3. Without the overloaded functions, I get:

sbrm-stream.cpp: In function ‘int main()’:
sbrm-stream.cpp:27: error: no match for ‘operator<<’ in ‘SBRM(3) << 320255973458211ll’
sbrm-stream.cpp:10: note: candidates are: SBRM& SBRM::operator<<(T&) [with T = long long int]
sbrm-stream.cpp:28: error: no match for ‘operator<<’ in ‘SBRM(4) << & i’
sbrm-stream.cpp:10: note: candidates are: SBRM& SBRM::operator<<(T&) [with T = const int*]
...
share|improve this question

1 Answer 1

up vote 12 down vote accepted

Because you’re expecting a non-const argument and literals can never be treated as such. Make the argument const and your troubles will go away:

template<typename T> SBRM& operator<<(T const& in) { oss << in; return *this; }

And as David has mentioned in his comment, you need overloads when using manipulators such as endl. Here’s a shot at them:

SBRM& operator <<(std::ostream& (*manip)(std::ostream&)) {
    oss << manip; // alternatively: manip(os);
    return *this;
}

// same for:

ostream& operator <<(ios& (*manip)(ios&));
ostream& operator <<(ios_base& (*manip)(ios_base&));

This covers all the parameterless manipulators.

I’m not actually sure how the parametrized manipulators from <iomanip> work but they seem to return a proxy object that can use the generic operator << variant.

share|improve this answer
    
long question, simple answer, but it works. Thanks –  stefaanv Nov 5 '10 at 13:58
1  
@stefaanv: it's always much more difficult to spot issues in the heat of things :) By the way, when passing by reference / pointer always try to use const, and only remove it when you really need to. It is also possible here to use typename boost::call_traits<T>::param_type to get either pass by value or pass by reference depending on what's most efficient (ie, built-in get passed by value). Check out: boost.org/doc/libs/1_44_0/libs/utility/call_traits.htm –  Matthieu M. Nov 5 '10 at 14:14
1  
You will still need to provide overloads if you want to handle manipulators, but that only adds 3 overloads with function pointers (maybe they can be templated into a single one, but I am not sure about that) –  David Rodríguez - dribeas Nov 5 '10 at 14:16
    
+1 for this answer. This looks like a question that was inspired by cplusplus.com's broken page about operator<< –  Johannes Schaub - litb Nov 5 '10 at 21:10

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.