67

How to make multi line preprocessor macro? I know how to make one line:

#define sqr(X) (X*X)

but I need something like this:

#define someMacro(X)
    class X : public otherClass
    {
         int foo;
         void doFoo();
    };

How can I get this to work?

This is only an example, the real macro may be very long.

106

You use \ as a line continuation escape character.

#define swap(a, b) {               \
                       (a) ^= (b); \
                       (b) ^= (a); \
                       (a) ^= (b); \
                   }

EDIT: As @abelenky pointed out in the comments, the \ character must be the last character on the line. If it is not (even if it is just white space afterward) you will get confusing error messages on each line after it.

  • 39
    A word of caution: Make sure the \ is the last character on the line. In C, whitespace typically doesn't matter, but in this case, invisible whitespace at the end of the line can kill you. – abelenky May 2 '12 at 18:34
  • 2
    One should add that resulting text is on one line though. Because C treats all white space between tokens the same it usually doesn't matter much, but still. – Peter - Reinstate Monica Apr 17 '15 at 9:17
  • Another thing I'd suggest doing is to place ` after all useful lines of the macro, and add a comment afterward saying something like // Blank line required after macro. It's sometimes easier to ensure that all lines of a macro end with ` than to ensure all but the last line does so. – supercat Aug 15 '15 at 17:50
17

You can make a macro span multiple lines by putting a backslash (\) at the end of each line:

#define F(x) (x)   \
              *    \
             (x)
  • 7
    +1: for not having missed the brackets around x!-) – alk May 2 '12 at 18:43
15

PLEASE NOTE as Kerrek SB and coaddict pointed out, which should have been pointed out in the accepted answer, ALWAYS place braces around your arguments. The sqr example is the simple example taught in CompSci courses.

Here's the problem: If you define it the way you did what happens when you say "sqr(1+5)"? You get "1+5*1+5" or 11
If you correctly place braces around it, #define sqr(x) ((x)*(x))
you get ((1+5) * (1+5)) or what we wanted 36 ...beautiful.

Ed S. is going to have the same problem with 'swap'

  • how about sqr(++i)? (assume we have an int i) :) – Géza Török Apr 9 '15 at 11:54
  • I did it as an exercise and apparently i is incremented as it is substituted into the macro (in this case it is substituted twice), then it is multiplied. So sqr(++5) == ((7) * (7)) – jiveturkey Apr 10 '15 at 17:20
  • 1
    @GézaTörök The expansion of sqr(++i) to ((++i)*(++i)) would invoke undefined behavior because the value of i is modified more than once within that statement (no sequence point between the operations). – moooeeeep Apr 16 '15 at 8:11
  • @moooeeeep sure, this is what I was trying to point out :) – Géza Török Apr 16 '15 at 13:38
4

You need to escape the newline at the end of the line by escaping it with a \:

#define sqr(X) \
        ((X)*(X))

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