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enum SomeEnum

void someFunc(int a)

int main()
  SomeEnum e = DD;
   someFunc(a) // calls someFunc with value 0
  return 0;

This works in MSVC but is it non standard?


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3 Answers 3

up vote 4 down vote accepted

An enum has an underlying integer type (the type used to store the value of the enum), and the enum value can be implicitly converted to that integer type's value.

In your case the underlying type is int, and the value is 0. Everything is okay.

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Note that in C++11, this is only true for unscoped enumerations. For scoped enumerations (enum class), there is no implicit conversion to integral type. – James McNellis May 23 '12 at 17:47

The identifiers in an enumerator list are declared as constants that have type int and may appear wherever such are permitted. here

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It's absolutely valid because, as GManNickG and tomato said, all enums are of type int (in fact, in C, enums ARE ints and you can assign them values outside the scope of the enum.

typedef enum _foo
   val1 = 57
} foo;
foo f = 99; // compiles in C but not C++

In fact, most compilers won't complain if the function argument type was bool or float or some other primitive number type because enums act as constant integer values like 0, -1, 200, etc...

What I'd say though, is that, if you have control over someFunc's signature and you want to ensure in C++ that no invalid values are passed in, change it to be

void someFunc(SomeEnum a);

for more typesafety

Also, always initialize your first enum value at least. I may be wrong on this but, back in the day, the compiler was allowed to pick an arbitrary starting value for your enum. Most of the time it picked 0 but not always. Even if that's not the case, it makes the code a little more self documenting and obvious.

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I didn't say they were all int, I said they're an integer type. They may be unsigned, (unsigned) long, or (unsigned) long long depending on the values in the enumerator. – GManNickG May 18 '12 at 3:00

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