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3

I want to know the reason behind the output of this code. I couldn't come up with an answer.

#define f(a,b) a##b
#define g(a) #a
#define h(a) g(a)
void main()
{
   printf("%s %s",h(f(1,2)),g(f(1,2)));
}

PS: output is 12 f(1,2). I thought it was 12 12 or f(1,2) f(1,2).

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3  
just to learn preprocessor working... – vindhya Jul 23 '12 at 9:50
3  
@cnicutar I think he found it here: cracktheinterviewers.blogspot.com/2012_03_01_archive.html – Dave Jul 23 '12 at 9:51
it was not written by me..it was asked in a test.. – vindhya Jul 23 '12 at 9:52
@Dave Nice catch :-) – cnicutar Jul 23 '12 at 9:52
thanks for the link..i suppose it may be useful – vindhya Jul 23 '12 at 9:54
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2 Answers

up vote 3 down vote accepted 
h(f(1,2))

f(1,2) is substituted for a. a is not the subject of a # or ## operator so it's expanded to 12. Now you have g(12) which expands to "12".

g(f(1,2))

f(1,2) is substituted for a. The # operator applied to a prevents macro expansion, so the result is literally "f(1,2)".

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oh...ok thanks...i did not concentrate on the workings of # operator – vindhya Jul 23 '12 at 10:07
@vindhya It's all a bloody mess. – Potatoswatter Jul 23 '12 at 10:08
up vote 2 down vote

Just do the replacements.

h(f(1, 2)) -> g(12) -> "12"

g(f(1,2)) -> "f(1, 2)"

You should also see here.

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for the second one also g(f(1,2)) can be g(12) and 12 right? – vindhya Jul 23 '12 at 10:00

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