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latley I spent much programming in Java. There you call the class you Inherited from with super(); (you all probably know that)

Now I have a class in C++ which has a default constructor which takes some arguments. Example:

class BaseClass {
public:
    BaseClass(char *name); .... 

If I inherit the class it gives me the warning, that there is no appropriate default constructor available. So is there something like super() in C++, or do I have to define a function where I initialize all variables?

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4  
There is no super() in C++, partly because you can have several base classes. –  Bo Persson Aug 3 '11 at 8:41
1  
There is __super keyword in MSVC. Which works well even for multiple base classes, and emits error only when ambiguity is there. –  Ajay Aug 3 '11 at 9:02
    
@Ajay That is a MSVC extension, and not a standard c++ –  BЈовић Aug 3 '11 at 9:23
1  
@VJ, Yes, I explicitly mentioned MSVC. Initial underscoring implies it is not standard keyword. :) –  Ajay Aug 3 '11 at 9:28

5 Answers 5

up vote 16 down vote accepted

You do this in the initializer-list of the constructor of the subclass.

class Foo : public BaseClass {
public:
    Foo() : BaseClass("asdf") {}
};

Base-class constructors that take arguments have to be called there before any members are initialized.

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this is the simplest answer so I'll give it the points –  Stefan Aug 3 '11 at 9:01

You have to use initiailzers:

class DerivedClass : public BaseClass
{
public:
  DerivedClass()
    : BaseClass(<insert arguments here>)
  {
  }
};

This is also how you construct members of your class that don't have constructors (or that you want to initialize). Any members not mentioned will be default initialized. For example:

class DerivedClass : public BaseClass
{
public:
  DerivedClass()
    : BaseClass(<insert arguments here>)
    , nc(<insert arguments here>)
    //di will be default initialized.
  {
  }

private:
  NeedsConstructor nc;
  CanBeDefaultInit di;
};

The order the members are specified in is irrelevant (though the constructors must come first), but the order that they will be constructed in is in declaration order. So nc will always be constructed before di.

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1  
You can specify the members in the initialization-list in any order you want, but that will not affect the order in which they are initialized. –  Björn Pollex Aug 3 '11 at 8:46
    
@Björn Pollex: fixed. Thanks. –  Nicol Bolas Aug 3 '11 at 8:48
    
But now you also removed the part that said that base-classes always come first. That was correct :) –  Björn Pollex Aug 3 '11 at 8:53
    
@Björn Pollex: How's that? –  Nicol Bolas Aug 3 '11 at 8:58

Use the name of the base class in an initializer-list. The initializer-list appears after the constructor signature before the method body and can be used to initialize base classes and members.

class Base
{
public:
  Base(char* name)
  {
     // ...
  }
};

class Derived : Base
{
public:
  Derived()
    : Base("hello")
  {
      // ...
  }
};

Or, a pattern used by some people is to define 'super' or 'base' yourself. Perhaps some of the people who favour this technique are Java developers who are moving to C++.

class Derived : Base
{
public:
  typedef Base super;
  Derived()
    : super("hello")
  {
      // ...
  }
};
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1  
I wouldn't say that typedefing super is that common. I've never seen a project which did it, in over 20 years of C++. –  James Kanze Aug 3 '11 at 8:49
    
@James: Agreed. There was talk on the Boost mailing list about making a small utility for having super, but nothing ever became of it. Just really isn't very useful. –  GManNickG Aug 3 '11 at 9:00
    
Doesn't work for multiple base classes –  BЈовић Aug 3 '11 at 9:24
    
I've seen it often used with the CRTP (curiously recurring template pattern) where the class you derive from is a template taking the class being defined and some other policy classes as template arguments. As the base class can end up being quite wordy with all the template arguments, it can be very handy to typedef it so you can avoid writing it out in its entire every time you want to use it. And if you want to change the base type to something that is duck-type compatible with the current base type, you can do that by changing the typedef and you don't have to change as much code. –  Scott Langham Aug 3 '11 at 11:43
    
Obviously, where multiple inheritance is involved having one name such as base or super may not be that useful, but there's plenty of code that uses single inheritance, so in practice it can be useful. I wouldn't go for the typedef solution with the simple example I posted, but when things get more involved, I think it can work out well. –  Scott Langham Aug 3 '11 at 11:48

Regarding the alternative to super; you'd in most cases use use the base class either in the initialization list of the derived class, or using the Base::someData syntax when you are doing work elsewhere and the derived class redefines data members.

struct Base
{
    Base(char* name) { }
    virtual ~Base();
    int d;
};

struct Derived : Base
{
    Derived() : Base("someString") { }
    int d;
    void foo() { d = Base::d; }
};
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There is no super() in C++. You have to call the Base Constructor explicitly by name.

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