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Is there anything wrong with a union having one or more methods? Or anything to watch out for? (I can see constructors/destructors being problematic for schizophrenic reasons)

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  • I don't see anything wrong with them except what you mentioned about the destructors and the freeing memory.
    – Jim
    Oct 29, 2010 at 22:14
  • 1
    This is exactly why you can't have union members of a class/struct type that has a non-trivial constructor, destructor or assignment operator. Oct 29, 2010 at 22:19

2 Answers 2

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From the C++03 & C++0x (Draft N3092) standards:

9.5 Unions
A union can have member functions (including constructors and destructors), but not virtual (10.3) functions. A union shall not have base classes. A union shall not be used as a base class.

Initializing the union using the aggregate initializer syntax (U u = { 42 };) or setting a member afterwards (U u; u.i = 42;) is not "problematic". And neither is initializing it using a constructor (U u( 42 );).
The only "catch" is that you cannot use the aggregate initializer syntax for a union that has a user defined constructor.

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  • is this new for C++0x, or has it been part of the C++ standard?
    – Jason S
    Oct 29, 2010 at 23:29
  • @Jim: That part is unchanged. Oct 29, 2010 at 23:31
  • unions can have constructors? then when is/isn't construction a problem?
    – Jason S
    Oct 30, 2010 at 14:49
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How could you possibly implement such a thing? Here's a pointer to a union, hope you don't mind that you have no idea which variables are safe to use and which aren't.

Unions are a dead language feature really anyway- they've been totally superseded by library-based methods like boost::variant or boost::any. Kind of similar to the void* and functional macros - they're very rarely useful in C++ compared to other options.

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    Don't forget the embedded world. Sometimes things aren't 100% typesafe.
    – Jason S
    Oct 29, 2010 at 23:30
  • @Jason: How does being embedded change anything? Either you know what type it is, so use a regular variable, you know all the types are related, so use polymorphism, or you need to know what type it is before you can do anything.
    – Puppy
    Oct 29, 2010 at 23:41
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    Embedded doesn't change anything about the language per se, but it does place limits on dynamic memory allocation and polymorphism (& much of boost is out) that bias you towards other techniques. Most often is a union between two 16-bit #s and a 32-bit #, or a union between a 16- or 32-bit # and a struct with bitfields. In those cases both members of the union have equally valid contents; it's both types.
    – Jason S
    Oct 29, 2010 at 23:59
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    One of C++'s strengths is that it does not forget that it is actually running on real world hardware, and unions are one of the tools that can greatly simplify this work.
    – Rob K
    Oct 30, 2010 at 2:38

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