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I have an object that can be printed to the console with std::cout << obj, but I can't get a std::string out of it, because it doesn't seem to implement something like a .string() method. I thought I might be able to use that overloaded operator to just get string representations of everything instead of having to implement a function to do it myself every time I need it, though having found nothing on the subject makes me think this isn't possible.

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up vote 10 down vote accepted

Use a std::ostringstream. It is a C++ stream implementation which writes to a string.

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yesssss that is exactly what i needed thank you sir – gob Jul 11 '11 at 20:17
    
i didn't know it was bad practice. i'll do it later then – gob Jul 11 '11 at 20:44
1  
@Greg The "NOW-helper" is useful for now. Yes, they should be rewarded by an upvote (or 10). But marking an answer as accepted immediately makes people less likely to pop in and give - who knows - a better idea, or a new way to approach the problem. In the end, you should accept an answer that will help others the most. See FGITW over at Meta.SO. – Mateen Ulhaq Jul 11 '11 at 21:04

You can use a std::ostringstream.

std::ostringstream os;
os << obj;
std::string result = os.str();
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There are different ways of doing it, you can manually implement it in terms of std::ostringstream, or you can use a prepacked version of it in boost::lexical_cast. For more complex operations, you can implement a in-place string builder like the one I provided as an answer here (this solves a more complex problem of building generic strings, but if you want to check it is a simple generic solution).


It seems that the linked question has been removed from StackOverflow, so I will provide the basic skeleton. The first think is to consider what we want to use with the in-place string builder, which basically is avoiding the need to use create unnecessary objects:

void f( std::string const & x );
f( make_string() << "Hello " << name << ", your are " << age << " years old." );

For that to work, make_string() must provide an object that is able to take advantage of the already existing operator<< for the different types. And the whole expression must be convertible to std::string. The basic implementation is rather simple:

class make_string {
   std::ostringstream buffer;
public:
   template <typename T>
   make_string& operator<<( T const & obj ) {
      buffer << obj;
      return *this;
   }
   operator std::string() const {
      return buffer.str();
   }
};

This takes care of most of the implementation with the very least amount of code. It has some shortcomings, for example it does not take manipulators (make_string() << std::hex << 30), for that you have to provide extra overloads that take the manipulators (function pointers). There are other small issues with this implementation, most of which can be overcome by adding extra overloads, but the basic implementation above is enough for most regular cases.

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The link you mentioned is not working anymore. Do you remember what your answer was? – rve Mar 27 '12 at 18:19
    
@rve: I have provide the basic implementation in this answer. It can be improved (the version I had provided more functionality than this one, but this is a good head start. – David Rodríguez - dribeas Mar 28 '12 at 1:37

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