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Here is what i have and I wonder how this works and what it actually does.

#define NUM 5
#define FTIMES(x)(x*5)

int main(void) {
    int j = 1;
    printf("%d %d\n", FTIMES(j+5), FTIMES((j+5)));

It produces two integers: 26 and 30.

How does it do that?

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7 Answers 7

And if you want to fix it:

#define FTIMES(x) ((x) * 5)
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Since it hasn't been mentioned yet, the way to fix this problem is to do the following:

#define FTIMES(x) ((x)*5)

The parentheses around x in the macro expansion prevent the operator associativity problem.

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that won't save you if you have multiple occurrences of the parameter in the macro and you pass in some kind of expression with side effects, like j += 3. – rmeador Jan 26 '09 at 19:46

define is just a string substitution.

The answer to your question after that is order of operations:

FTIMES(j+5) = 1+5*5 = 26

FTIMES((j+5)) = (1+5)*5 = 30

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The compiler pre-process simply does a substitution of FTIMES wherever it sees it, and then compiles the code. So in reality, the code that the compiler sees is this:

#define NUM 5
#define FTIMES(x)(x*5)

int main(void)

    int j = 1;

    printf("%d %d\n", j+5*5,(j+5)*5);

Then, taking operator preference into account, you can see why you get 26 and 30.

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Technically, the compiler doesn't see the #defines. :) – Greg Hewgill Jan 26 '09 at 19:09

Order of operations.

FTIMES(j+5) where j=1 evaluates to:


Which is:



By making FTIMES((j+5)) you've changed it to:




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the preprocessor substitutes all NUM ocurrences in the code with 5, and all the FTIMES(x) with x * 5. The compiler then compiles the code.

Its just text substitution.

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The reason this happens is because your macro expands the print to:

printf("%d %d\n", j+5*5, (j+5)*5);


1+5*5 and (1+5)*5
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That should teach a valuable lesson in avoiding #define macros for things that inline functions should actually handle. – Calyth Jan 26 '09 at 19:07
Or, when you can't avoid them, place each occurrence of each argument in parentheses, and place the entire macro in parenthesis (that is, when your macro is an expression and not a statement) – Arkadiy Jan 26 '09 at 19:16

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