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I have this method:

- (double) myMethod (double a, double b) {
  return a * b;
}

this method returns a double.

I am about to transform this in a #define statement, like

#define myMethod(a,b) (a * b)

is this define returning a double? I suppose so, but and if I want it to return a float?

thanks.

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2 Answers 2

up vote 4 down vote accepted

A #define is simply text substitution, if you would write:

myMethod(1, 2)

it would expand to:

(1 * 2)

This is, clearly, an integer.

You could, write something like:

#define myMethod(a,b) ( (double)(a) * (double)(b) )

To ensure that you get a double floating-point operation.

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ahhh... but I was receiving a floating point from that define. My question is if it was a double or float. Anyway, this is a good idea, to specify what each variable is. Thanks. –  SpaceDog Apr 20 '11 at 20:11
4  
You will get what you put in. If you put in floats, you will get a float. If you put in doubles, you will get doubles. Again, unlike a real function, a #define is only replaces text before the actual compiler gets a chance to see the code. –  Lindydancer Apr 20 '11 at 20:13
1  
On a related note, a couple of exercises for @Digital Robot and anyone else who reads this: Why (double)(a) * (double)(b) and not (double)((a) * (b))? Also, why (double)(a) * (double)(b) and not (double)a * (double)b? –  Peter Hosey Apr 21 '11 at 8:05

Don't do that. Simply use inline functions, like

static inline double MyMethod (double a, double b)
{
    return a * b;
}

Just as fast, less headaches.

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thanks!!!!!!!!! –  SpaceDog Apr 20 '11 at 20:28

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