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I know you can return a character string from a normal function in C as in this code

#include <stdio.h>

char* returnstring(char *pointer) {
    pointer="dog";
    return pointer;
}

int main(void)
{
    char *dog = NULL;
    printf("%s\n", returnstring(dog));
}

However, I can't find a way to be able to return character strings in #define functions, as in this code

#include <stdio.h>

#define returnstring(pointer) { \
   pointer="dog"; \
   return pointer; \
}

int main(void)
{
    char *dog = NULL;
    printf("%s\n", returnstring(dog));
}

I know that there are workarounds(like using the first program). I just want to know if it is possible

share|improve this question
1  
Short answer: You can't. Don't make confusing, a macro function-like doesn't behave like a function. – The Mask Dec 17 '13 at 23:57

Thinking about a "#define function" is, IMO, the wrong way to approach this.

#define is a blunt instrument which amounts to a text find/replace. It knows little to nothing about C++ as a language, and the replace is done before any of your real code is even looked at.

What you have written isn't a function in its own right, it is a piece of text that looks like one, and it put in where you have written the alias.

If you want to #define what you just did, that's fine (I didn't check your example specifically, but in general, using #define for a function call and substituting the arguments is possible), but think twice before doing so unless you have an amazing reason. And then think again until you decide not to do it.

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You can't "return" from a macro. Your best (ugh... arguably the "best", but anyway) bet is to formulate your macro in such a way that it evaluates to the expression you want to be the result. For example:

#define returnstring(ptr) ((ptr) = "hello world")

const char *p;
printf("%s\n", returnstring(p));

If you have multiple expression statements, you can separate them using the horrible comma operator:

#define even_more_dangerous(ptr) (foo(), bar(), (ptr) = "hello world")

If you are using GCC or a compatible compiler, you can also take advantage of a GNU extension called "statement expressions" so as to embed whole (non-expression) statements into your macro:

#define this_should_be_a_function(ptr) ({ \
    if (foo) { \
        bar(); \
    } else { \
        for (int i = 0; i < baz(); i++) { \
            quirk(); \
        } \
    } \
    ptr[0]; // last statement must be an expression statement \
})

But if you get to this point, you could really just write a proper function as well.

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You don't return anything from a #defined macro. Roughly speaking, the C preprocessor replaces the macro call with the text of the macro body, with arguments textually substituted into their positions. If you want a macro to assign a pointer to "dog" and evaluate to the pointer, you can do this:

#define dogpointer(p) ((p)="dog")
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The thing is returnstring as a macro does not do what it says; it also assigns the value to the parameter. The function does as it says, even if it (somewhat oddly) uses its parameter as a temporary variable.

The function is equivalent to:

char* returnstring(char *ignored) {
    return "dog";
}

The function macro is much the same as:

 #define returnstring(pointer) pointer = "dog"

Which begs the question, why not call it assign_string?

Or why not just have:

  #define dogString "dog"

And write:

int main(void)
{
    char *dog = NULL;
    printf("%s\n", dog = dogString);
}

The function for assignString is:

char* assignstring(char **target{
    *target= "dog";
    return *target;
}

You can then have a macro:

assign_string_macro(pointer) assignstring(&pointer)

Ultimately if you want to "return character strings in #define functions", then all you need is:

#define returnstring(ignored) "dog"
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