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I was doing basics of macros. I define a macro as follows:

#define INTTOSTR(int) #int

to convert integer to string.

Does this macro perfectly converts the integer to string? I mean are there some situations where this macro can fail?

Can I use this macro to replace standard library functions like itoa()?

for example:

int main()
{
    int a=56;
    char ch[]=INTTOSTR(56);
    char ch1[10];
    itoa(56,ch1,10);
    printf("%s %s",ch,ch1);
    return 0;
}

The above program works as expected.

Interestingly this macro can even convert float value to string.

for example:

INTTOSTR(53.5);

works nicely.

Till now I was using itoa function for converting int to string in all my projects. Can I replace itoa confidently in all projects. Because I know there is less overhead in using macro than function call.

7
  • Did you try INTTOSTR(a)? Jul 11 '14 at 19:13
  • 3
    INTTOSTR(SOME_CONSTANT) - Oops. This is basically a normal stringizing macro except only meant for integers, which isn't too useful, especially considering it accepts other things.
    – chris
    Jul 11 '14 at 19:13
  • C++11 has a function for this to_string. There are several issues concerning macros.
    – 101010
    Jul 11 '14 at 19:15
  • Ohh yes it is not converting variables :( Jul 11 '14 at 19:15
  • 1
    Actually the interesting thing is that the only thing this macro works on are things you can just surround in quotation marks anyway.
    – chris
    Jul 11 '14 at 19:21
5

Macros execute during (before to be exact) compile time, so you can convert a literal number in your sourcecode to a string but not a number stored in a variable

In your example, INTTOSTR(56) uses the stringification operator of the preprocessor which eventually results in "56". If you called it on a variable, you'd get the variable name but not its content.

1
  • Yes sir I noted it ,It is not converting variables :( Jul 11 '14 at 19:18
2

In C, you can use itoa or if you are desperate and would like to avoid it, use snprintf for instance:

snprintf(my_str, sizeof(int), "%i", my_int);

The problem with your macro is that you are thinking about constants, but of course, your macro will be broken when you need to use a variable holding an integer. Your macro would try to stringify the macro name as opposed to the value it would be holding.

If you are fine with constants, your macro is "good", otherwise it is b0rked.

1
  • Yes I got the point, I was thinking that I have develop something really helpful without even trying it on variables. Jul 11 '14 at 19:30
1

Your macro does not convert integers to strings, it converts a literal into a string literal, which is something very different.

Literals are any plain numbers or definitions of values in your code. when you do int x = 10; the numeral 10 in an integer literal, while x is a variable and int is the type. const char* ten = "10"; also defines a literal, in this case a string literal, with value "10" and a variable called ten which points to the address where this literal is defined. What your macro actually does is change the way the literal is represented before any actual compilation goes on, from an integer literal into a string literal.

So, the actual change is being done before any compilation, just at source code level. Macros are not functions and cannot inspect memory, and your convertion would not work with variables. If you try:

int x = 10;
const char* ten = INTTOSTR(x);

You would be very puzzled to find that your variable ten would actually hold the value "x". That's because x is treated as a literal, and not as a variable.

If you want to see what's going on, I recommend asking your compiler to stop at preprocessing, and see the output before your code is acutally compiled. You can do this in GCC if you pass the -E flag.

PS. Regarding the apparent "success" with conversion of float values, it just comes to show the danger of macros: they are not type-safe. It does not look at 53.5 as a float, but as a token represented by characters 5, 3, . and 5 in the source code.

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