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I have a small question about the preprocessor constants in C. I understand what is the goal of this kind of "variable" and how it works. However, I have a small question about their evaluation. Let's consider a small example :

#define MY_VARIABLE 5

int main() {
    int test1 = MY_VARIABLE*5;
    int test2 = 5;
    int test3 = MY_VARIABLE*test2;
}

During the preprocessor step, MY_VARIABLE will be replaced by 5 in the code. My question is: will test1 be computed during the compilation or during the execution ? Is that correct that test3 will be computed during the execution ? This question may seem a bit weird and useless but I'm studying a program where this kind of things is done a lot of times and I would like to know if this kind of operation can slow the execution.

  • test1)initial value is no evaluation at the time of execution. test3)initial value will no evaluation at the time of execution by inference when outputting the code. – BLUEPIXY Apr 27 '16 at 8:57
  • Let's says computation then :) – user1382272 Apr 27 '16 at 9:01
  • Actually your question isn't at all about precprocessor constant evaluation, – Jabberwocky Apr 27 '16 at 9:04
  • How about you give it try and see whats the result ;) – ckruczek Apr 27 '16 at 9:08
  • I'm not pretty sure I understand what you mean. Do you mean that the executable will not compute anything ? So test2 will be replaced in test3 and test3 will be computed ? – user1382272 Apr 27 '16 at 9:09
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As you have already understood, the C preprocessor merely replaces the macros before the actual compilation takes place, therefore I stripped out all preprocessor related stuff.

In this code no evaluation takes place during execution because the compiler calculates 5*5 during compile time and by inference is can also evaluate all other constants during compilation:

int main() {
    int test1 = 5 * 5;
    int test2 = 5;
    int test3 = 5 * test2;
}

The exact equivalent of the preceeding code fragment is:

int main() {
    int test1 = 25;
    int test2 = 5;
    int test3 = 25;
}

But in following code test3 is evaluated during run time, because the value of test2 cannot be determined during compile time, because it depends on the return value of SomeFunction that can only be known at run time.

int main() {
    int test1 = 5 * 5;
    int test2 = SomeFunction();        
    int test3 = 5 * test2;
}
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    Note that the value for test3 may also be computed during execution depending on the compiler's optimization settings. For debugging settings it's not unusual for the test3 value to be computed during debugging. – atturri Apr 27 '16 at 9:30
  • Thank you very much ! I still have one : let's say that test3 = MY_VARIABLE + j; where j is a variable updated at each loop iteration. Will it also be computed during the compilation if the optimization is set ? – user1382272 Apr 27 '16 at 9:32
  • @atturri that may be true, for example if SomeFunction returns a constant. – Jabberwocky Apr 27 '16 at 9:32
  • @user1382272 of course test3 = MY_VARIABLE + j will be computed after each loop iteration at run time, because j is not constant. What else would you expect? – Jabberwocky Apr 27 '16 at 9:34
  • @user1382272 you understand that test3 = MY_VARIABLE + j is strictly the same as test3 = 5 + j. – Jabberwocky Apr 27 '16 at 9:35

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