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I am trying to understand what is the flow of replacement of same2, same1 and concatenate in:

#include<stdio.h>
#define concatenate(a,b) a##b
#define same1(a)  #a
#define same2(a)  same1(a)
main()
{
        printf("%s\n",same2(concatenate(1,2)));
        printf("%s\n",same1(concatenate(1,2)));
}

I have tried to understand this from many places but I am not able to get it. Can somebody please explain it more clearly?

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2 Answers

up vote 2 down vote accepted

With

#define concatenate(a,b) a##b
#define same1(a)  #a
#define same2(a)  same1(a)

when you have same2(concatenate(1,2)), the argument of same2 is expanded before passing it to same1, so there, concatenate(1,2) is replaced by its result, 12 that then is stringified by same1 to produce "12".

With same1, no expansion of the macro argument occurs, since it's preceded by the stringification token #:

After the arguments for the invocation of a function-like macro have been identified, argument substitution takes place. A parameter in the replacement list, unless preceded by a # or ## preprocessing token or followed by a ## preprocessing token (see below), is replaced by the corresponding argument after all macros contained therein have been expanded. Before being substituted, each argument’s preprocessing tokens are completely macro replaced as if they formed the rest of the preprocessing file; no other preprocessing tokens are available.

(section 6.10.3.1 (1) in n1570)

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Before being substituted, each argument’s preprocessing tokens are completely macro replaced as if they formed the rest of the preprocessing file; no other preprocessing tokens are available. Can you please explain this a bit? – Vaibhav Agarwal Oct 8 '12 at 19:00
The "as if they formed the rest..." means that macros defined later aren't in scope, only macros defined before, so if one of the tokens matches such a macro, it is not replaced. Is that what you wanted explained? – Daniel Fischer Oct 8 '12 at 19:06
Daniel, I appreciate your effort but I am still in a doubt why same2(concatenate(1,2)) replaces concatenate(1,2) as 1##2 and then same2 as same1. But this does not happen so when I try the same thing with same1(concatenate(1,2)); means why is concatenate(1,2) not replaced by 1##2 first? – Vaibhav Agarwal Oct 8 '12 at 19:12
1  
same2(a) is defined to become same1 ( a ) (adding whitespace to separate tokens). Now the argument (a) is not preceded by either # or ##, nor followed by ##, so in an invocation of same2, the passed argument is macro-expanded. When the argument is concatenate(1,2), the macro concatenate is invoked, with the arguments 1 and 2, giving 1 ## 2, then the ## operator is applied (before the token sequence is rescanned for further macro replacements) producing the token 12. That contains no more macro names, so that is passed to same1, so we're at same1 ( 12 ). – Daniel Fischer Oct 8 '12 at 19:46
1  
Now the result of the replacement of same2's argument is rescanned for macro invocations (but same2, if it occurred as a token would not be substituted again). By the definition of same1, that results in # 12. Then the # operator is applied, producing "12". In the replacement list of same1, the argument (a) is preceded by a # token, so the stringification operator is applied before the replacement list is rescanned for macro expansion, so the creation of the string happens before it is checked if the argument contains a macro invocation. – Daniel Fischer Oct 8 '12 at 19:46
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up vote 0 down vote

Your concatinate(a,b) becomes concatinate(1,2) when 1 and 2 are passed as parameters. That in turn becomes 1##2 which translates to 12 because ## is a concatenating operator. So parameters 1 and 2 are concatenated to become 12

Same1(a) becomes simply #a, where # is stringisizing operator (See http://c-faq.com/ansi/stringize.html). So Same1(12) becomes "12" and when printed out to console

Same2(a) is the same as Same1(a), which is simply #a, which just outputs parameter a as-is; so the output of Same2(a) where parameter a is 'Concatenate(1,2)' is just a string "Concatenate(1,2)"

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You are saying it completely opposite. The output is: 12 concatenate(1,2) – Vaibhav Agarwal Oct 8 '12 at 17:21
yes, the parameter to the first printf becomes #(a##b), where a is 1 and b is 2, so it becomes "12"; parameter to the second printf s simply #a which becomes "concatinate(1,2)" – MaxS Oct 8 '12 at 17:24

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