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I'm using gcc, which implements enums as 32 bit integers on the architecture I have (don't know in general). If I try to assign an enum value too large, I get

warning: integer overflow in expression

Is there a way to make gcc use 64 bit integers as the underlying integer type? A gcc specific way is fine, although if there's a portable way, that's even better.

** Edit ** This is a related post: http://stackoverflow.com/questions/76624/64-bit-enum-in-c

Unlike that question, I'm also interested in gnu extensions.

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2 Answers 2

up vote 1 down vote accepted

The following works for me with -std=c++0x, but not with -std=c++98 though

enum EnumFoo {
    FooSomething = 0x123456789ULL
};

I tested this with

$ g++ --version
g++ (Ubuntu 4.4.3-4ubuntu5) 4.4.3
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Which version of gcc are you using? This doesn't seem to work for 4.3.4, I still get a 32bit enum. –  pythonic metaphor Oct 21 '10 at 19:15
    
@pythonic metaphor: Updated my answer to address your question. –  Arun Oct 21 '10 at 19:57
    
ULL should tell your compiler to use C99's unsigned long long type, which has a minimum width of 64 bits (and is defined to be exactly 64 bits wide on all implementations I'm aware of.) However, if your compiler doesn't support long long (e.g. if you're in GCC and using strict C++98, which is what is meant by -std=c++98), ULL will either be seen as an error, or the extra L will be ignored and you'll get an unsigned long (which is often 32 bits wide.) I don't recall exactly which behaviour is standards-conformant offhand, but if it's giving you 32 bits, I suspect the latter. –  Jonathan Grynspan Oct 21 '10 at 19:57

one option: create a template class with a static const member of a specific type.

for example std::tr1::integral_constant, declared in c++/tr1/type_traits in the GNU distribution (at least, the one i'm using).

for an enum value: your declaration could matter (e.g., use U, L as appropriate)

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