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When using printf for string, I got :

string key = "123";
printf("Value is %s \n", key);

// output is: Value is < null >

But if I do it like this:

string key = "123";
printf("Value is: ");
printf(key.c_str());

then I get:

// output is: Value is 123

So what I did wrong with

printf %s

?

Thanks in advance.

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1  
A string is not a char*. If you are using gcc, enabling warnings will cause the compiler to complain about runtime failures with the first call. –  Oscar Korz Mar 29 '12 at 7:53
    
OK, the question is answered, but I'm just curious. why would the output be Value is in this case? Why not something else? (On my computer, the compiler warns that the program will crash, and it does.) Is is coincidence, does the value of key happen to look like a pointer that points to a zero byte? –  Mr Lister Mar 29 '12 at 9:26
    
@MR Lister: the first case, the output is <null> I typed it but then the editor hided it somehow. I just have updated it. –  olidev Mar 30 '12 at 7:45

6 Answers 6

up vote 4 down vote accepted

std::string is a C++ class. So this doesn't work because:

  1. printf is a pure C function, which only knows how to deal with primitive types (int, double, char *, etc.).
  2. printf is a variadic function. Passing a class type to a variadic function leads to undefined behaviour.1

If you want to display a string, use std::cout:

std::cout << key << "\n";

If you simply must use printf, then this should work:

printf("%s\n", key.c_str());

c_str is a member function which returns a C-style string (i.e. a const char *). Bear in mind that it has some restrictions; you cannot modify or delete the string object in-between calling c_str() and using the result:

const char *p = key.c_str();
key = "something else";
printf("%s\n", p);  // Undefined behaviour


1. Or possibly implementation-defined, I don't recall. Either way, it's not going to end well.

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thanks. std:cout also works but I would like to use printf to make it global. –  olidev Mar 29 '12 at 7:55
1  
@devn: What do you mean by "global"? If you mean "also works in C", then stop there; string is C++-only. –  Oliver Charlesworth Mar 29 '12 at 7:56
    
I am a C# programmer. I am doing something with C++/CLI. In that C++ project, it contains many things in C as you pointed out they use printf everywhere instead of cout. therefore, I should use printf as well –  olidev Mar 29 '12 at 7:58
    
@devn While I agree with the sentiment to use C++ output---printf is irremedialy broken---you should not mix the two on a single stream. If the rest of the code is using printf, putc, etc., then you should not use std::cout. –  James Kanze Mar 29 '12 at 8:05
    
@JamesKanze: Could you elaborate. What problems could mixing C++ and C style output cause (assuming that std::ios_base::sync_with_stdio has been called)? –  Mankarse Mar 29 '12 at 8:10

The token %s tells printf to expect a null terminating const char*, and you're passing it a std::string.

The correct way would be:

printf("Value is %s \n", key.c_str());

The C++ way would be to use std::cout.

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you are right! it works –  olidev Mar 29 '12 at 7:54
1  
If I had a penny for every time I've seen this problem, I'd have at least a dollar. –  Andreas Brinck Mar 29 '12 at 7:55
1  
Just a nit, but %s tells printf to expect a char const*. (But passing a char* is also fine---the standard explicitly allows type punning between pointer types which differ only in their cv-qualifications.) –  James Kanze Mar 29 '12 at 7:58

printf is C library function and requires C "string" (char*) for %s format. You have already discovered, that you can do cppstring.c_str() to get this. Also see this question.

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The C style would be

printf("Value is %s \n", key.c_str()); // printf does need a nullterminated char*

The C++ style would be

cout << "Value is %s " << key << endl; // cout can use std::string directly
share|improve this answer
    
great that you brought to me a better view of the difference between C and C++ style. Thanks a lot! –  olidev Mar 29 '12 at 7:56

In addition to the other answers: printf is a variadic function, and passing an object of class type which is not a POD is undefined behavior, and std::string is a class type which is not a POD. Undefined behavior means, of course, that anything can happen, but this one is easy to detect, and a good compiler will at least warn about the error.

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cout<< string can work is bacasue of the String class has overloaded the operator "<<",so printf() certainly can't work!

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sorry,i made a writing mistake just now. –  unkonwn_kid Mar 29 '12 at 9:16

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