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Suppose I had the following:

class A; // forward declaration

class A {
public:
    A(A* parent) : parent(parent) {}
    A* parent;
    virtual void foo() = 0;
};

class B : public A {
public:
    B() : A(this) {}
    void foo() {}
};

When instantiating two separate instances of class B, the parent pointers are the same in each of the instances. Any idea why?

EDIT: I believe the above now more closely models what I have in my code.

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this should work just fine. Can you post the actual error message? –  Named Mar 15 at 20:53
    
The value of this (the address of the object) is perfectly fine to use at that point, whether the object's contents are initialized or not. –  chris Mar 15 at 20:55
    
There's no error message per se, it's just that two separate instances of the class are pointing to the same memory location. –  Quetzalcoatl Mar 15 at 20:56
    
Could it be something to do with the fact that in my actual code the class equivalent to A is pure virtual? –  Quetzalcoatl Mar 15 at 20:58
1  
You need a copy constructor. Two objects pointing two the same is a symptom of missing copy ctor. –  user2672165 Mar 15 at 20:58

2 Answers 2

up vote 1 down vote accepted

You need to write a copy constructor. Your default constructor isn't invoked when an instance is copied, and the compiler-generated copy constructor will copy the parent pointer from the original instance.

A(A const &other) : parent(this) {}

You may want to write a copy-assignment operator too, to preserve the parent pointer when one instance is assigned to another.

Also, think about what should happen when copying or assigning from an instance whose parent has been changed from its default. In that case, should the copy/assignee get the same parent as the original? If so, your copy constructor and assignment operator will have to check whether parent == this and behave differently depending on the result. It may be simpler to just use nullptr as the default value — either way you need special-case handling for instances without parents, but a null pointer at least makes it obvious that no "real" parent has been assigned yet.

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Just to avoid compiler messages I would omit 'other'. –  user2672165 Mar 15 at 21:16
    
Would I need a copy constructor for both A and B? Or just A? –  Quetzalcoatl Mar 15 at 21:17
    
Perhaps you are right about the nullptr idea, I was merely following the conventions of Disjoint Set data structures which propose that roots of trees point at themselves, but I don't see that being much different to the roots being null anyhow. –  Quetzalcoatl Mar 15 at 21:25
    
Or maybe you should just make these classes non-copyable and non-assignable. If a copy of a tree node should have the same parent as the original, that parent should be made aware of its new child, which may incur significant processing (e.g. to rebalance the tree), and may not even be supported (e.g. a binary tree node that has two children already). On the other hand, if a copy of a tree node is a new root with no parent, then it's not really a copy at all, and should've been created with some other constructor. –  Wyzard Mar 15 at 21:36
    
I agree, I do think these should probably be made non-copyable and non-assignable. I will look up best practices on doing so now, thanks. –  Quetzalcoatl Mar 15 at 21:38

Add a semicolon after the class definition. It's missing in the example you provided. Compilers sometimes give cryptic error messages for this.

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No that's not it, the code example above is a simplified version that I typed out by hand quickly - the lack of the trailing ; was a mistake on my part but isn't the source of my problem. –  Quetzalcoatl Mar 15 at 21:07

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