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Suppose the following:

struct POD1 { int a; };
struct POD2 : POD1 { int b; };

int main() {
    POD2 p2 = POD2();
    return 0;
}

Will both p2.a and p2.b equal 0 after p2 is defined? Basically I'm not sure if the value initialization rules also apply to base classes of POD types.

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@jrok: Thanks, I've corrected my code example. –  Robert Dailey Sep 18 '12 at 19:16
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1 Answer

up vote 4 down vote accepted

POD2 p2();

That does not do what you expect, but rather declares a function by the name p2 that takes no argument and returns a POD2.

Now, a slightly different case would be:

POD2 p2 = POD2();

The right hand side of the expression POD2() represents the creation of a temporary that is value-initialized [5.2.3/2]. Value-initialization for a user defined type with no user defined constructor is zero-initialization [8.5/7], and zero-initialization of that type will zero-initialize each one of the members and bases [8.5/5] guaranteeing that both members are 0.

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Thanks; I didn't compile the code (obviously) so I apologize for the oversight in my p2 definition. I've corrected my OP. –  Robert Dailey Sep 18 '12 at 19:15
2  
@JohnB: POD2 p2; does what is expected, i.e. does not initialize the members and as such it cannot be preferred over POD2 p2 = POD2(); that does guarantee the initialization, they are different things, and you use one or the other depending on what you need. –  David Rodríguez - dribeas Sep 18 '12 at 19:20
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