3

The argument of _Pragma is a string so I would think that when you paste strings together in the normal c-preprocessor way (ie putting them right next to eachother) that you could form a new string for the argument of _Pragma. However

_Pragma("GCC Poison " "puts")

fails with the error

error: _Pragma takes a parenthesized string literal

How can this be circumvented?

This particular example isn't very useful and has a trivial solution of making them all one string to begin with, but the end goal is to stringize a macro into it

  • 1
    A DO_PRAGMA macro as here ? – Eugene Sh. Aug 18 '17 at 17:52
  • Did you try _Pragma("GCC Poison ""puts")? – Yunnosch Aug 18 '17 at 17:55
  • @Yunnosch Yes, It also fails. @ Eugene Sh. That DO_MACRO is promising, I've still got to test whats possible – rtpax Aug 18 '17 at 17:57
  • Could "parenthesized string literal" mean "(blabla)"? – Yunnosch Aug 18 '17 at 17:59
  • @Yunnosch, no that does not work. Also, literally putting _Pragma("GCC poison puts") does work – rtpax Aug 18 '17 at 18:09
0

The DO_PRAGMA macro in the GNU docs is defined like this

#define DO_PRAGMA(x) _Pragma (#x)

Using this, if you put two seperate token unstringized next to eachother, they will become stringized. To expand macros within the definition, it must go through one level of indirection, so define as

#define DO_PRAGMA_(x) _Pragma (#x)
#define DO_PRAGMA(x) DO_PRAGMA_(x)

Using this you can create shorthands for various pragmas like this

#define POISON(name) DO_PRAGMA(GCC poison name)
POISION(puts)//becomse _Pragma("GCC poison puts")

Thanks to Eugene Sh. for pointing me to the DO_PRAGMA macro

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.