Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I know almost no C++ so that's not helping, and my XS isn't much better. I'm creating an XS interface for a C++ library and I have almost all my methods working except one.

The method in Perl should look like this:

$return_data = $obj->readPath( $path );

The method is defined as this the .h file:

int readPath(const char* path, char* &buffer, bool flag=true);

The "buffer" will get allocated if it's passed in NULL.

There's two additional versions of readPath with different signatures, but they are not the ones I want. (And interestingly, when I try and compile it tells me the "candidates" are the two I don't want.) Is that because it's not understanding the "char * &"?

Can someone help with the xsub I need to write?

I'm on Perl 5.14.2.

BTW -- I've also used a typemap "long long int" to T_IV. I cannot find any documentation on how to correctly typemap long long. Any suggestions how I should typemap long long?

Thanks,

share|improve this question

1 Answer 1

up vote 1 down vote accepted

I've never dealt with C++ from C or XS. If it was C, it would be:

void
readPath(SV* sv_path)
   PPCODE:
      {
         STRLEN len;
         char*  path   = SvPVbyte(sv_path, len);
         char*  buffer = NULL;
         SV*    rv     = NULL;

         if (!readPath(path, buffer, 0))
            XSRETURN_UNDEF;

         rv = newSVpv(buffer, 0);
         free(buffer);

         ST(0) = sv_2mortal(rv);
         XSRETURN(1);
      }

Hopefully, that works or you can adjust it to work.


I assumed:

  • readPath returns true/false for success/failure.
  • buffer isn't allocated on failure.
  • The deallocator for buffer is free.
share|improve this answer
    
The part of your answer that solved this for me was understanding that I didn't need to use the C++ XS structure -- Class::method(...) -- in the xsub. I kept trying to find a signature that XS would accept but once I did away with that it was much easier to solve. Thanks. –  user1446426 Jul 22 '12 at 15:20

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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