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What is the reason for the -Wlong-long gcc warning?

From the gcc man page:

-Wlong-long
       Warn if long long type is used.  This is enabled by either -Wpedantic or -Wtraditional in ISO C90 and C++98 modes.  To inhibit the warning messages, use -Wno-long-long.

As I understand it, long long is required to be at least 64-bits (practically it is always 64-bits, at least with today's compilers). Was this not the case for ISO C90 or C++98, or is there some other reason not to use long long?

I know about <stdint.h> types like int64_t and friends, but some not-so-old compilers (e.g. VS2005, and Green Hills ARM 3.5) do not provide <stdint.h>, and I thought long long would be (at least) 64 bits for those and newer toolchains.

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  • Compilers that don't have stdint.h are not C99-compliant, which means there are good odds they don't have long long at all! (Unless they're old versions of GCC.)
    – zwol
    Jul 21, 2016 at 15:37
  • From the description given it sounds like Patrick's "not-so-old" compilers are in the same category as a 90's gcc - long long without stdint.h (except that through most of the 90's we had the excuse that C99 wasn't written yet, plus the excuse that "ordinary" CPUs didn't have 64-bit integer registers, so the lack of a 64-bit integer among the basic C types made some sense.)
    – user2404501
    Jul 21, 2016 at 16:00
  • @WumpusQ.Wumbley: C was designed to be usable (and in the 1980s was in fact often used) on 8-bit processors; having to perform long additions in four steps was somewhat irksome, but even when numbers were known to be no greater than 16777215 the convenience of being able to operate on a single quantity was worth the performance drain of using four steps rather than three. There are far fewer cases where using an 8-byte type would be justifiable. IMHO, the proper remedy would have been to make "long long" an optional feature, at least for freestanding implementations.
    – supercat
    Sep 7, 2016 at 21:16

1 Answer 1

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There was no long long type yet in ISO C90 and C++98. It has only been added in ISO C99 and C++11.

GCC provided it as an extension prior to standardization, though.

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  • 20
    ...a rare example of a gcc extension that became standardized with the same semantics
    – user2404501
    Jul 21, 2016 at 15:15
  • So the reason to provide such a warning would appear to be to help ensure your code compiles with non C99- or C++-11-compliant compilers.
    – Patrick
    Jul 21, 2016 at 15:48
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    @Patrick yes, and I think the option only exists because someone decided that all of the warnings enabled by -ansi -pedantic should be represented by their own -Wfoo options. There's really no reason to use -Wlong-long on its own. Oh, but -Wno-long-long does make more sense.
    – user2404501
    Jul 21, 2016 at 16:04
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    @Patrick: Another reason for such a warning, for decimal literals that happen to be between LNG_MAX+1u and ULNG_MAX is that such literals are regarded as unsigned types in C89, but signed types in C99. In C89 implementations where LNG_MAX is 2147483647 and ULNG_MAX is 4294967295, the expression 4294967295==-1 would yield 1 (since both sides would be converted to unsigned long), while in C99 it would evaluate to 0 (both sides converted to unsigned long long).
    – supercat
    Nov 5, 2016 at 23:02
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    @Galaxy long long is at least 64-bit though. ;)
    – a3f
    Jul 9, 2018 at 5:49

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