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Arrays, functions, pointers, references, classes, unions, enumerations and pointers to members are compound types.

My understanding of a compound type is that is based on other type(s). For example, T[n], T* and T& are all based on T. Then what other type(s) is an enumeration based on?

Or if my understanding of compound types is incorrect, what exactly is it about a type that makes it a compound type? Is compound simply a synonym for user-defined?

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In C, the term "derived type" instead of "compound type" is used instead, and in C enums are not derived types. This makes me think that "compound type" in C++ is not only meant to compound types to a new type, but also values to a new type. The description of enumerations given hardens that suspicions which says "enumerations, which comprise a set of named constant values." –  Johannes Schaub - litb May 26 '10 at 23:21
    
@Johannes enums in C and enums in C++ are quite different beasts, aren't they? For example, you can assign integral values to enum variables in C but not in C++. –  FredOverflow May 26 '10 at 23:24
    
correct but nontheless in both languages they define an own type. But i guess i'm interpreting too much into these two terms. "compound type" in fact seems to only refer to the action of compounding types, and the underlying type like AndreyT says for enums is the type compounded, it seems :) –  Johannes Schaub - litb May 26 '10 at 23:28
    
It's a bit sad that the standard introduces terms like "compound types" without motivating them. Maybe someone has the Annotated Reference Manual and can look it up? That would be nice. –  FredOverflow May 26 '10 at 23:35
    
the ARM uses the term "derived type" and doesn't include enumerations likewise. It seems that this term was motivated by the fact that "derived" has got a different meaning in C++ (classes derived from other classes). However i think you have a good point. The closeness of C to the underlying integer type (to which it even is compatible) maybe motivated them not to make enumerations derived types, and reversely motivated the C++ designers to make them compound types. –  Johannes Schaub - litb May 27 '10 at 8:41

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In C++ enum types are scalar types, yet at the same time they are compound types since they are built on top of some fundamental integral type. In case of an array or pointer you specify "base" type explicitly, but in case of an enum the specific underlying integral type is chosen implicitly and automatically by the implementation. You have no manual control over the underlying integral type, which still doesn't disqualify enum types from being compound in nature.

Some compilers (as well as future C++ standard C++0x) allow user to specify the underlying integer type for given enum type, which makes it more obvious that it is in fact a compound type. See here for examples like

enum class Color : char { red, blue };
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