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I must have missed an obvious fact here -- haven't been programming C++ for a while. Why can't I print the c-style string after assigning it to a const char* variable? But if I try to print it directly without assigning it works fine:

#include "boost/lexical_cast.hpp"

using namespace std;
using boost::lexical_cast;

int main (int argc, char** argv)
{
    int aa=500;
    cout << lexical_cast<string>(aa).c_str() << endl;   // prints the string "500" fine

    const char* bb = lexical_cast<string>(aa).c_str();
    cout << bb << endl;                                 // prints nothing

    return EXIT_SUCCESS;
}
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Prints 500! –  Mark Garcia Jan 17 '13 at 5:29
    
@MarkGarcia: It's undefined behavior. So doing what you expect it to is a perfectly valid option for the implementation. –  Benjamin Lindley Jan 17 '13 at 5:30
    
@BenjaminLindley Of course. Just showing a real output. :) –  Mark Garcia Jan 17 '13 at 5:31

2 Answers 2

up vote 5 down vote accepted

The C String returned by c_str is only usable while the std::string from which it was obtained exists. Once that std::string is destroyed, the C String is gone too. (At that point, attempting to use the C String yields undefined behavior.)

Other operations may also invalidate the C String. In general, any operation that modifies the string will invalidate the pointer returned by c_str.

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Ah yes I see now. This make sense, otherwise it'll be memleaks everywhere if c_str() returns a data placed on heap. Thanks a lot –  gerrytan Jan 17 '13 at 5:36

c_str function is called on the result of the temporary string which is created from the lexical_cast. Since you don't save it, the string is destroyed at the end of that expression and thus accessing the pointer to the c_str of the string that has been destroyed is undefined behaviour.

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