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This appears to be undefined behavior

union A {
  int const x;
  float y;
};

A a = { 0 };
a.y = 1;

The spec says

Creating a new object at the storage location that a const object with static, thread, or automatic storage duration occupies or, at the storage location that such a const object used to occupy before its lifetime ended results in undefined behavior.

But no compiler warns me while it's an easy to diagnose mistake. Am I misinterpreting the wording?

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You don't always, or even usually, get warnings for undefined behaviour. Voting to close as you answered your own question... –  BlueRaja - Danny Pflughoeft Apr 13 '11 at 17:58
5  
@BlueRaja litb isn't asking "why isn't the compiler warning me", he's asking "the compiler didn't warn me is that because I misinterpreted the spec?" –  JaredPar Apr 13 '11 at 18:00
    
@Blue there is no reason why a compiler wouldn't warn or error out for an easy to diagnose mistake, simply looking for const union members in an union with non-const members. Every compiler I've access to warns for void f() { int a; ++a = ++a; }. Also, what @JaredPar says applies :) –  Johannes Schaub - litb Apr 13 '11 at 18:01
    
Where in the spec is that from. Somtimes reading the surrounding context goup helps. –  Loki Astari Apr 13 '11 at 18:04
    
It's at 3.8[basic.life]/9 in both C++03 and the C++0x FDIS (N3290). –  James McNellis Apr 13 '11 at 18:07

3 Answers 3

If it's any consolation - the Microsoft Xbox 360 compiler (which is based on Visual Studio's compiler) does error out. Which is funny, because that's usually the most lenient of the bunch.

error C2220: warning treated as error - no 'object' file generated
warning C4510: 'A' : default constructor could not be generated
    : see declaration of 'A'
warning C4610: union 'A' can never be instantiated - user defined constructor required

This error goes away if I take the const away. gcc-based compilers don't complain.

EDIT: The Microsoft Visual C++ compiler has the same warning.

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3  
Visual C++ 2010 gives the same warning (with /W4). That warning (C4610) is interesting in that it is wrong: A can indeed be instantiated as demonstrated by A x = { 0 }; (which Visual C++ 2010 does accept). –  James McNellis Apr 13 '11 at 18:04
    
Actually, it seems to be that Visual Studio C++ doesn't like uninitialized const ints, period. I tried adding const int x on global scope, and that created a warning as well. Makes sense, since the compiler treats const ints as compile-time constants. –  EboMike Apr 13 '11 at 18:07
    
I initialized the union and its first member to 0. –  Johannes Schaub - litb Apr 13 '11 at 18:07
    
@Johannes: True. It's just my guess that the compiler trips over the const int handling and insists that a const int needs to be initialized via a constructor or an initial assignment and doesn't consider ={0} in unions. –  EboMike Apr 13 '11 at 18:10
    
To summarize - I believe you're right, it's undefined behavior, and Visual C++ accidentally warns you about it, although not on purpose, but due to ineptitude. –  EboMike Apr 13 '11 at 18:12

The latest C++0x draft standard is explicit about this:

In a union, at most one of the non-static data members can be active at any
time, that is, the value of at most one of the non-static data members can
be stored in a union at any time.

So your statement

a.y = 1;

is fine, because it changes the active member from x to y. If you subsequently referenced a.x as an rvalue, the behaviour would be undefined:

cout << a.x << endl ; // Undefined!

Your quote from the spec is not relevant here, because you are not creating any new object.

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But it destroys a.x and creates a.y therefor creating a new object at the storage location that a const object of automatic storage duration previously occupied (see 3.8p1, we reuse the storage of a.x for a.y). Can you please explain why it doesn't apply in more detail? –  Johannes Schaub - litb Apr 13 '11 at 18:31
1  
@Johannes: does a.y = 1 end the lifetime of a.x by reusing the memory? If so, then the part of the spec you quote isn't violated. But I don't know one way or the other whether it does, it's a pretty fine distinction as to what it means to re-use memory. As TonyK says, the text about unions invents its own terminology "is active" in preference to talking in terms of object lifetime. –  Steve Jessop Apr 13 '11 at 18:34
    
@Steve if it doesn't end the lifetime of a.y, then we would violate aliasing rules, because we would modify the stored value of an int const object by an lvalue of type float in this example: union A { int x; float y; }; A a = { 0 }; a.y = 1;. –  Johannes Schaub - litb Apr 13 '11 at 18:41
1  
@Johannes: Assigning to a.y doesn't destroy a.x (which has no destructor anyway) -- it just makes a.x invalid. It doesn't create anything either, it just makes a.y valid. No record is kept of which member of a union is valid at any time, so it's up to the programmer to follow the rules. –  TonyK Apr 13 '11 at 18:42
2  
@Johannes: that's brutal. So struct Foo { const int a; }; char x[sizeof(Foo)]; Foo *p = new (x) Foo(); p->~Foo(); x[0] = 0; is undefined behavior? x[0] is at the location of a const object before its lifetime ended. Or even if x[0] = 0; doesn't "create an object", a repeat of new (x) Foo(); certainly does. –  Steve Jessop Apr 13 '11 at 19:01

It doesn't really make sense to have a const member of a union, and I'm surprised that the standard allows it. The purpose of all of the many limitations on what can go into a union is to arrive at a point where bitwise assignment will be a valid assignment operator for all members, and you can't use bitwise assignment to assign to a const int. My guess is that it's just a case that no one had previously thought of (although it affects C as well as C++, so it's been around for awhile).

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1  
Is it that unreasonable to want a read-only member of a union? For example if I'm using the union to examine the bytes of a float one at a time, I might want union { float f; const unsigned char b[sizeof(float)]; }, if that had the desired/expected effect of enforcing that I don't write byte-wise, only read. Of course in that example I could just cast to unsigned char*, so maybe I need another one, but type-punning through unions isn't always guaranteed so it's implementation-dependant what this actually wins you. –  Steve Jessop Apr 13 '11 at 18:25
    
Cast to const unsigned char*, I mean! –  Steve Jessop Apr 13 '11 at 18:35
2  
It makes perfect sense to have a const member of a union. It can be initialised when the union is constructed, but not later. If any other member of the union is subsequently assigned to, then the const member becomes undefined for ever. –  TonyK Apr 13 '11 at 18:38
    
I'm sorry. I changed the type of the second member to float, to prevent any confusion that it would have something to do with int vs int const or something. –  Johannes Schaub - litb Apr 13 '11 at 21:42
    
What's the point of a const member of a union? There's no point in using a union unless you're going to change it; otherwise, a variable of the original type would do the trick. –  James Kanze Apr 14 '11 at 8:07

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