1

My question (Single line comment continuation) got me wondering about compiler compliance and warning messages, particularly with warnings-as-error feature in many compilers.

From the C++ spec, § 1.4.2.1 states:

If a program contains no violations of the rules in this International Standard, a conforming implementation shall, within its resource limits, accept and correctly execute that program.

If a warning message is issued for code which technically conforms to the standard (as in my linked question), even if I specifically asked for a warning to be issued (again, in my example if I used -Wcomments with gcc), and I use warning-as-errors (-Werror), the program will not compile. I realize that this is rather obtuse, given that I could workaround the issue in several ways. However, given the quote, is this a violation of the standard which is generally permitted, or is somehow otherwise explicitly allowed?

  • 3
    You can think of gcc -Werror as not being a conforming implementation if that helps. Think of it as only a developtment and styling assistant (like Clippy) that helps you create a nice-looking program that you can (or could) give to a conforming implementation. – Kerrek SB May 25 '15 at 12:51
  • Is there any documentation and/or indication that you're compiling in non-compliance mode, with gcc, or other compilers? – MuertoExcobito May 25 '15 at 13:40
  • @MuertoExcobito: GCC's diagnostics certainly distinguish between "real" errors and warnings treated as errors. And of course you can tell that warnings are treated as errors because you specified -Werror. I don't use other compilers enough to comment on them. – Mike Seymour May 25 '15 at 14:09
5

Yes, if you tell the implementation not to conform with the standard (for example, by requesting errors for well-formed code constructs), then its behaviour won't be conforming.

  • 1
    Surprising. I still don't see the point of the question. – Shoe May 25 '15 at 12:57
  • @Jefffrey well, assume you write code that technically complies with the standard (even if it's not really great with my comments question). It gets compiled on many different compilers with different options, not all of which you have or can test. With a compiler that supposedly conforms to the standard, but fails compilation based on the compiler options, it might be very important. – MuertoExcobito May 25 '15 at 13:44
  • @MuertoExcobito: I'm don't see why it might be "very important". It just means that, if you're building (conforming) code of dubious provenance, you might have to disable whatever compiler options you use to impose extra restrictions on your own code. – Mike Seymour May 25 '15 at 13:47
  • @MuertoExcobito: That's only important to the people who decided they wanted those warnings. It's not your problem. That said, those people might use the warnings to decide that they don't want to buy your library. :-) – Kerrek SB May 25 '15 at 13:47
  • 1
    @MuertoExcobito: Then whoever is compiling the code might have to disable whatever options they use to enforce non-standard restrictions on their code. If your code, and their compiler (without non-standard options), are conformant, there should be no problem. – Mike Seymour May 25 '15 at 14:02

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.