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Herbert Schildt says:

In some situations, real function should be used in place of function-like-macro, for example: where code size is to be minimized or where an argument must not be evaluated more than once.

What does he mean by "an argument must not be evaluated more than once?"

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Schildt is seen sceptical by some. Just sayin'. – DevSolar Mar 14 at 16:41
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@DevSolar: I don't know that book, but if the cited statement is typical for the style, I fully agree with the sceptics. – Olaf Mar 14 at 18:26
    
@DevSolar You meant skeptical, right? Or did you spell it with a C because this question is tagged c and not k? :P – cat Mar 14 at 21:47
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Regardless of which side of the pond you inhabit, it's being used as an adverb in that sentence, so it should be sceptically/skeptically. – Cody Gray Mar 15 at 7:00

Let's take a macro to calculate the maximum of two values:

#define MAX(a, b) ((a) < (b) ? (a) : (b))

Then we use it like this:

int x = 5;
int y = 10;
int max = MAX(x++, y++);

Then the macro is expanded to

int max = ((x++) < (y++) ? (x++) : (y++));

As you can see, the increment operation on either x or y will happen twice, not what would happen if you had a function where each argument you pass is evaluated only once.


Another important point is the use of parentheses in the macro. Let's take another simple macro:

#define MUL(a, b) a * b

Now if you invoke the macro as

int sum = MUL(x + 3, y - 2);

then the expansion becomes

int sum = x + 3 * y - 2;

Which due to operator precedence is equal to

int sum = x + (3 * y) - 2;

Often not quite what was expected, if one expects (x + 3) * (y - 2).

This problem is also "solved" by using functions.

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@haccks That is incorrect. As Joachim says in his answer MAX(x++, y++) is expanded to ((x++) < (y++) ? (x++) : (y++)); and is therefore evaluated twice. The corresponding function max(x++, y++), each argument is only evaluated once – vu1p3n0x Mar 14 at 17:46
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@haccks Both the x++ and the y++ expressions are evaluated as part of the condition. Then one of either x++ or y++ is evaluated once again depending on the condition in the ternary expression. – Joachim Pileborg Mar 14 at 18:14
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@haccks But a macro is simply expanded to the body of the macro, there's no evaluation of the "arguments" since those a simply pasted into the expanded macro. When using a macro such as MAX as defined in my answer, then it's the preprocessor which handles the macro expansion, the compiler proper doesn't see the macro invocation it only sees the expanded ternary expression. – Joachim Pileborg Mar 14 at 18:26
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Second problem is mitigated by #define MUL(a, b) ((a) * (b)) – Erbureth Mar 14 at 20:26
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I don't think your second example is helpful for this question. As Erbureth said, you can fix that by adding some parentheses--so it's an example of using a poorly formed macro rather than being an example of using a macro where you should be using a function. – Carmeister Mar 15 at 1:17

Sometimes arguments have side effects.

For example, the value of i++ is i, but i is increased by 1. As a result, the value of next i++ will be i + 1.

In a macro, arguments are evaluated every time it's called for, causing resulting values; In a function, the (actual) arguments are evaluated and copied to (formal) arguments inside the function, dismissing the side effects.

When inplementing a function, you don't care about side effects. However, implicit type promotion and casting may be error-prone instead.

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