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?
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.
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;
}
