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Are multiple-inherited constructors called multiple times? And in what order are constructors called? Does this depend on the order in the inheritance list?

Here is an example (it's only for making the situation clear, no real-life example).

class Base {};
class DerivedBaseOne : public Base {};
class DerivedBaseTwo : public Base {};
class Derived : public DerivedBaseTwo, public DerivedBaseOne 
{};

//somewhere in the code, is Base() called two times here?
Derived * foo = new Derived();

Is the Base() constructor called twice? And in what order are the constructors called? Base first? Or DerivedBaseOne() or DerivedBaseTwo() first?

Thanks.

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1  
why the serial downvotes here? The question and the first two answers are all downvoted with no explanation –  jalf Sep 13 '11 at 17:23
2  
You may also be thinking of virtual inheritance as this would be slightly different from normal inheritance. –  Loki Astari Sep 13 '11 at 17:23
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Inherited constructors is a feature of c++11 and mean completely different thing. –  Gene Bushuyev Sep 13 '11 at 17:25
1  
Related: en.wikipedia.org/wiki/Diamond_problem –  John Dibling Sep 13 '11 at 17:45
1  
ideone.com/9ghzb –  Robᵩ Sep 13 '11 at 17:46

3 Answers 3

up vote 9 down vote accepted

The way you write it, Derived has two distinct subobjects of type Base, and each gets their own constructor called from the respective DerivedBaseXXX constructor of which it is the subobject. The order of calls follows the order of declaration.

By contrast, of you declare DerivedBaseXXX : virtual public Base, then there is only one Base subobject, and its constructor is called from the most derived object, i.e. from the Derived object.

(To explain in a bit more detail: A (possibly singly-inheriting) class is constructed by first 1) calling the base class's constructor, then 2) calling the constructors of all member objects in their order of declaration, and finally 3) executing the constructor function body. This applies recursively, and for multiple inheritance, you just replace (1) by calling all the base class's constructors in the order in which the inheritance was declared. Only virtual inheritance adds a genuine extra layer of complication here.)

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The order of constructor calls for your Inheritance hierarchy will be:

Base()  
DerivedBaseTwo()  
Base()
DerivedBaseOne()  
Derived()

The Order is indeed well defined and it depends on the order in which you mention the derivation for base classes and the order in which you declare members in the class for members.(Find the Reference from the Standard below)

Does the Base() constructor is called twice?
YES

The Base() clas constructor gets called her twice, because two classes DerivedBaseTwo() and DerivedBaseOne() derive from it, So the base class constructor gets called once for each of them. You Derived class has two distinct Base subobjects through multiple paths(one through DerivedBaseOne() & other though DerivedBaseTwo())

The hierarchy of classes you have with multiple Inheritance is unusual and it leads to an problem called as the Diamond Shaped Inheritance Problem. And to avoid this problem C++ introduces the concept of Virtual base class.


Reference:

C++03 Standard: 12.6.2/5, Initializing bases and members

Initialization shall proceed in the following order:

— First, and only for the constructor of the most derived class as described below, virtual base classes shall be initialized in the order they appear on a depth-first left-to-right traversal of the directed acyclic graph of base classes, where “left-to-right” is the order of appearance of the base class names in the derived class base-specifier-list.

— Then, direct base classes shall be initialized in declaration order as they appear in the base-specifier-list (regardless of the order of the mem-initializers).

— Then, nonstatic data members shall be initialized in the order they were declared in the class definition (again regardless of the order of the mem-initializers).

— Finally, the body of the constructor is executed.

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1  
Are you sure about that? I thought it was the order of declaration (including inheritance declaration) that matters. –  Kerrek SB Sep 13 '11 at 17:24
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Yeah, @Kerrek is right. The initialization list's order has no effect on anything (unfortunately. That would have been more intuitive IMO) –  jalf Sep 13 '11 at 17:25
    
The order of the members in the initializer list is ignored by the compiler (it is irrelevant). Not sure I agree with jalf that would have been more intuitive, but I do think it should have been an error to have the initializer list in a different order than declaration. –  Loki Astari Sep 13 '11 at 17:26
    
Luckily, good compilers warn you if the initializer list does not follow the order of declaration. –  Kerrek SB Sep 13 '11 at 17:26
    
@Tux-D: Already updated. –  Alok Save Sep 13 '11 at 17:27

This is answered in: http://www.parashift.com/c++-faq-lite/multiple-inheritance.html#faq-25.14

The very first constructors to be executed are the virtual base classes anywhere in the hierarchy. They are executed in the order they appear in a depth-first left-to-right traversal of the graph of base classes, where left to right refer to the order of appearance of base class names.

Since your multiple inheritance declaration lists DerivedBaseTwo first, its construction order will be executed before DerivedBaseOne's.

So in your Derived class, DerivedBaseTwo and its chain is created first, that is:

1 - Base then DerivedBaseTwo

And then DerivedBaseOne and its chain:

2 - Base then DerivedBaseOne

And then:

3 - Derived is created after everything else.

Also, with multiple inheritance be mindful of the Diamond Inheritance Problem

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Don't see any problem here. –  Loki Astari Sep 13 '11 at 17:31
    
@Tux-D: maybe not in his example code, but he could run into it in the future. Guess my wording stunk~! –  birryree Sep 13 '11 at 17:35

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