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I am writing a program which is supposed to handle both c strings (char*) and c++ strings (std::string). I have isolated by concern to the example below.

#include <iostream>
#include <string>

void hello(std::string s) {
    std::cout << "STRING FUNCTION" << std::endl;

void hello(char* c) {
    std::cout << "CHAR FUNCTION" << std::endl;

int main(int argc, char* argv[]) {

    return 0;

When I compile this program, I get the warning:

test.cpp:14: warning: deprecated conversion from string constant to ‘char*’

regarding the first call to hello. Running the program gives:


showing that the first call to hello is matching the signature hello(char* c).

My question is, if, as a c++ program, a string literal, ("ambiguous") is a std::string, why would it be cast to a char* and then match the function hello(char* c) rather than staying as a std::string and matching hello(std::string s)?

I know I can pragma or -Wsomething out the warning (and that I can cast char* to string without concern), but I want to know why the compiler would even bother doing this cast and if there is a way to tell it not to. I am compiling with g++ 4.4.3.

Thank you.

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A string literal is not an std::string. It has type const char[N]. –  juanchopanza Mar 20 '13 at 22:11
string literal, ("ambiguous") is not a std::string. It follows the same convention as C strings. –  Drew Dormann Mar 20 '13 at 22:11
In case it hasn't come across yet, change char * to const char *. –  chris Mar 20 '13 at 22:18
I see. My misunderstanding along with the warning message using the phrase string constant rather than char[] made me believe otherwise. –  Aaron Mar 20 '13 at 23:19
Also, the reason you're getting the test.cpp:14: warning: deprecated conversion from string constant to ‘char*’ warning is because you're converting a string literal into a char * rather than a const char *. The compiler is warning you, because hello(char *c) is free to write to the address pointed to by c. Never mind that your function doesn't write to c; the compiler knows that it can, because c is non-const. String literals should be regarded as read-only; writing to them results in undefined behavior (i.e. may work on some hardware but not on others). –  Scott Smith Jul 21 at 0:06

3 Answers 3

up vote 4 down vote accepted

String literals like "ambiguous" are not of type std::string. std::string is a library only type, with no language magic whatsoever. The type of a string literal is actually const char[N], where N is the length of the literal.

For historical reasons (backward compatibility) string literals will implicitely convert to char* (violating const-correctness). This builtin conversion is prefered to the "user defined" conversion to std::string, which is why it calls the char* function and gives you the warning.

If you change the signature of hello to hello(const char* c) it will probably not give you a warning anymore (but still won't call the std::string version, to do that you need a manual cast).

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You are wrong : "as a c++ program, a string literal, ("ambiguous") is a std::string"

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It's good to know the OP is wrong, but it'd be even better to know what the right answer is :) –  Praetorian Mar 20 '13 at 22:16

("ambiguous") is not a std::string, it is an array of characters.

That's why its calling void hello(char* c).

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