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why do these blocks of code yield different results?

some common code:

#define PART1PART2 works
#define STRINGAFY0(s) #s
#define STRINGAFY1(s) STRINGAFY0(s)

case 1:

#define GLUE(a,b,c) a##b##c  
STRINGAFY1(GLUE(PART1,PART2,*))
//yields
"PART1PART2*"

case 2:

#define GLUE(a,b) a##b##*
STRINGAFY1(GLUE(PART1,PART2))
//yields
"works*"

case 3:

#define GLUE(a,b) a##b
STRINGAFY1(GLUE(PART1,PART2*))
//yields
"PART1PART2*"

I am using MSVC++ from VS.net 2005 sp1

Edit: it is currently my belief that the preprocessor works like this when expanding macros: Step 1: - take the body - remove any whitespace around ## operators - parse the string, in the case that an identifier is found that matches the name of a parameter: -if it is next to a ## operator, replace the identifier with the literal value of the parameter (i.e. the string passed in) -if it is NOT next to a ## operator, run this whole explanation process on the value of the parameter first, then replace the identifier with that result. (ignoring the stringafy single '#' case atm) -remove all ## operators

Step 2: - take that resultant string and parse it for any macros

now, from that I believe that all 3 cases should produce the exact same resultant string:

PART1PART2*

and hence after step 2, should result in

works*

but at very least should result in the same thing.

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2 Answers 2

up vote 2 down vote accepted

case 1 is undefined behavior since your are tempting to paste a * into one preprocessor token, according to the association rules of your preprocessor (which are not specified by the norm I think) this either tries to glue together the tokens PART1PART2 (or just PART2) and *. In your case this probably fails silently, but the token PART1PART2 followed by * will then not be considered for macro expansion again. Stringfication then produces the result you see.

My gcc behaves differently on your examples:

/usr/bin/gcc -O0 -g -std=c89 -pedantic   -E test-prepro.c
test-prepro.c:16:1: error: pasting "PART1PART2" and "*" does not give a valid preprocessing token
"works*"

So to summarize your case 1 has two problems.

  • Pasting two tokens that don't result in a valid preprocessor token.
  • evaluation order of the ## operator

In case 3, your compiler is giving the wrong result. It should

  1. evaluate the arguments to STRINGAFY1
  2. to do that it has to expand GLUE
  3. GLUE results in PART1PART2*
  4. which must be expanded again
  5. the result is works*
  6. which then is passed to STRINGAFY1
share|improve this answer
    
shouldn't case 1 and case 2 result in the same thing then? –  matt Jul 19 '10 at 8:15
    
what is a "valid preprocessor token"? maybe an identifier? in that case I can't see how any of them would work. I suppose case 2 - the only one that works - is the only one that passes legal identifiers to all parameters... –  matt Jul 19 '10 at 8:20
    
@matt, no case 1 is simply undefined, so you can't know what your compiler choses to resolve that problem. –  Jens Gustedt Jul 19 '10 at 8:23
    
The preprocessor is supposed to split the input into tokens. Valid tokens are (among others) identifiers, punctuation characters by themselves, all two or three character operators such as <<= or ... and some weird concept of what would be a number. The ## can only glue together two tokens into another valid token. E.g * ## = should be possible whereas = ## * should not, there is no operator =*. –  Jens Gustedt Jul 19 '10 at 8:28
    
I'm still a little confused as to the difference between case 1 and case 2, both attempt the same operation, its just in one case the '' has come from a parameter, and in the other, it is a literal. seeing as how literal##parameter and parameter##parameter should work exactly the same, I'm a little confused as to how they could yield different results. perhaps in case 2 it notices early that the '' is not gonna create an identifier, and aborts the paste, where as, hiding in a parameter, the compiler gets caught up? –  matt Jul 19 '10 at 8:30

It's doing exactly what you are telling it to do. The first and second take the symbol names passed in and paste them together into a new symbol. The third takes 2 symbols and pastes them, then you are placing the * in the string yourself (which will eventually evaluate into something else.)

What exactly is the question with the results? What did you expect to get? It all seems to be working as I would expect it to.

Then of course is the question of why are you playing with the dark arts of symbol munging like this anyways? :)

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as far as I can tell, after the macro expander has pasted/substituted the parameters in, and sorted out all the paste'##' operators, all three should yield Exactly the same string, 'PART1PART2*' seeing as how this should be done before the expanded body is then parsed for sub macros, I would expect the same result for all 3 –  matt Jul 19 '10 at 7:33
    
oh yeah, and I am only doing it to try and understand exactly how the preprocessor works, I would never write horrible code like this :) –  matt Jul 19 '10 at 7:41
    
The construct a ## b doesn't expand a and b, and #c doesn't expand c. See boost.org/doc/libs/1_43_0/libs/preprocessor/doc/ref/cat.html –  Philipp Jul 19 '10 at 7:52
    
not quite sure what you are saying there Philipp, that is stating that the ## operator does not allow the individual parameters to be expanded BEFORE they are pasted, mine wouldn't expand to anything individually anyway, what I am expecting is that the RESULT string AFTER pasting be expanded. now it is my belief that the pasting operations and the parse over the result are entirely independent operations, that is why, seeing as how the pasting operation results in the same string in all 3 cases, I find it strange that the answer is not the same each time. –  matt Jul 19 '10 at 7:58

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