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There is an example on the FAQ to explain the difference between inline and #define. The code is here and the link is: http://www.parashift.com/c++-faq/inline-vs-macros.html

Tried with Visual C++, both unsafe() and unsafe(f()) didn't increase i twice. Is there a mistake on the example?

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  • 1
    Post code, not links to code.
    – nhgrif
    Dec 7, 2013 at 17:44
  • 2
    The example doesn't have any output in it - you need to show what you did to show the values. And the example doesn't appear to have any problems at first glance. Dec 7, 2013 at 17:45
  • there is a comparison in macro. That comparison calls a function. So it's evaluated twice. By the way that site is well-known to be pretty good, so you can trust it. And check all your doubts with debugger
    – Tebe
    Dec 7, 2013 at 17:48
  • Link in question is currently broken.... And that is why you should have paid attention to nhgrif's comment. Dec 4, 2017 at 6:48

2 Answers 2

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The main idea of #define is that it is just a preprocessor directive, meaning that this:

#define unsafe(i) ( (i) >= 0 ? (i) : -(i) )

will preprocess your code before it is compiled, and will replace the statement

unsafe(x++);

with the following

((x++) >= 0 ? (x++) : -(x++));

Everytime x++ is evaluated, x gets incremented.

One possible reason why you have problems with getting this sample code right might be that you compile your code with optimizations that optimize out all the unused / unnecessary code.

If you don't use your x anywhere, then it is considered as unused, hence does not get included into compiled code.

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  • I believe its -O or -O2. However, if you are just learning, then I would suggest not to bother with those flags. Instead, note that there are two default configurations for your VC++ solution (project), namely Debug and Release. The former does not use optimization, hence I suggest running sample code in Debug, and the latter optimizes using some default optimization techniques, including the one I described above.
    – Eric Gopak
    Dec 8, 2013 at 11:26
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Just tested the example, Check Eric Gopak's answer for the explanation:

// A macro that returns the absolute value of i
#define unsafe(i)  \
    ((i) >= 0 ? (i) : -(i))

// An inline function that returns the absolute value of i
inline
int safe(int i)
{
    return i >= 0 ? i : -i;
}

int countCalls = 0;

int f()
{
    return countCalls++;
};

int main()
{
    int x = 0;
    int ans = 0;

    ans = unsafe(x++);   // Error! x is incremented twice
    ans = unsafe(f());   // Danger! f() is called twice

    // x = 2
    // countCalls = 2

    ans = safe(x++);     // Correct! x is incremented once
    ans = safe(f());     // Correct! f() is called once

    // x = 3
    // countCalls = 3

    return 0;
}
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  • strange, i used your code (actual mine is the same) but got x=1 from both unsafe() calls. what compiler are you using? i use visual c++ express 2010. Also what compiler options are you using? All i used were defaults. Dec 7, 2013 at 18:07
  • @user3078106 you should get ans=0 because it's post increment but ans=1.
    – uk4321
    Dec 7, 2013 at 18:11
  • @user3078106 I use Visual Studio 2013, now I also tested this in 2010 which provides the same result (as I expected). Is it possible that you are running your program in Release mode? Values provided in release mode can not always be trusted. See this answer Dec 7, 2013 at 18:26
  • No, I always test in debug mode. Dec 7, 2013 at 18:58
  • I got it. But why uk4321 said "should get ans=0 because it's post increment but ans=1"? Where is the post increment from? Dec 8, 2013 at 2:28

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