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I get the values for NumericType Values (10, 3.1416, 20) to be 20, 3.1416, 20 after the object has been constructed. is the behaviour for constructors in a union defined?

union NumericType
{
    NumericType() {}

    NumericType(int i, double d, long l)
    {
        iValue = i;
        dValue = d;
        lValue = l;
    }

private:
    long        lValue; 
    int         iValue; 
    double      dValue;
};


int main()
{
     union NumericType Values ( 10, 3.1416, 20 );
}
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I think you don't understand what a union is. –  Hot Licks Aug 29 '11 at 2:08

2 Answers 2

up vote 2 down vote accepted

What you're doing doesn't make sense. Because it's a union, you're assigning to the same area of memory 3 times. Because you assign to lvalue in the constructor last, that's what everything remains at. All three variables are at the same location and occupy the same memory (with the exception of dValue which takes up 4 more bytes than the other two).

You probably want a struct, not a union (because in structs, all variables are seperate and setting one to something won't affect others).

Here's a good visualization (keep in mind this block is just one 8 byte chunk of memory, not 3):

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Bear in mind that the elements in a union share memory, so having a constructor which initializes all of them will throw away information.

That said, this is not valid C++.

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What's the correct way to initialize a union then? Does it always have to be the first element, or can it be any? –  Kerrek SB Aug 29 '11 at 1:47
    
The type of initialization, if any, is compiler-dependent. –  James McLeod Aug 29 '11 at 2:02
    
@Kerrek the proper initialization of a union is a ring. –  Seth Carnegie Aug 29 '11 at 2:33

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