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Suppose I have

class A           { public: void print(){cout<<"A"; }};
class B: public A { public: void print(){cout<<"B"; }};
class C: public A {                                  };

How is inheritance implemented at the memory level?

Does C copy print() code to itself or does it have a pointer to the it that points somewhere in A part of the code?

How does the same thing happen when we override the previous definition, for example in B (at the memory level)?

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Did you mean for "class C" to inherit from class C? –  David Smith Apr 21 '10 at 4:56
1  
There are a lot of details in the correct answer. If you're willing to buy/read a book on the subject, you can get Inside the C++ Object Model by Stan Lippman. –  R Samuel Klatchko Apr 21 '10 at 5:17
    
Didn't you mean for 'print' to be virtual? –  squelart Apr 21 '10 at 5:51
1  
@squelart: no i didn't. I wanted to understand the normal inheritance working first. –  Moeb Apr 24 '10 at 12:58

5 Answers 5

up vote 5 down vote accepted

Compilers are allowed to implement this however they choose. But they generally follow CFront's old implementation.

For classes/objects without inheritance

Consider:

#include <iostream>

class A {
    void foo()
    {
        std::cout << "foo\n";
    }

    static int bar()
    {
        return 42;
    }
};

A a;
a.foo();
A::bar();

The compiler changes those last three lines into something similar to:

struct A a = <compiler-generated constructor>;
A_foo(a); // the "a" parameter is the "this" pointer, there are not objects as far as
          // assembly code is concerned, instead member functions (i.e., methods) are
          // simply functions that take a hidden this pointer

A_bar();  // since bar() is static, there is no need to pass the this pointer

Once upon a time I would have guessed that this was handled with pointers-to-functions in each A object created. However, that approach would mean that every A object would contain identical information (pointer to the same function) which would waste a lot of space. It's easy enough for the compiler to take care of these details.

For classes/objects with non-virtual inheritance

Of course, that wasn't really what you asked. But we can extend this to inheritance, and it's what you'd expect:

class B : public A {
    void blarg()
    {
        // who knows, something goes here
    }

    int bar()
    {
        return 5;
    }
};

B b;
b.blarg();
b.foo();
b.bar();

The compiler turns the last four lines into something like:

struct B b = <compiler-generated constructor>
B_blarg(b);
A_foo(b.A_portion_of_object);
B_bar(b);

Notes on virtual methods

Things get a little trickier when you talk about virtual methods. In that case, each class gets a class-specific array of pointers-to-functions, one such pointer for each virtual function. This array is called the vtable ("virtual table"), and each object created has a pointer to the relevant vtable. Calls to virtual functions are resolved by looking up the correct function to call in the vtable.

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+1 for bringing name mangling and the compiling process into discussion. Besides getting more complex (not necessarily through a vtable) with virtual methods, it gets even messier with multiple and virtual inheritance... probably out of the scope of the question. –  David Rodríguez - dribeas Apr 21 '10 at 8:03
    
Yeah, I didn't want to get into the details of multiple inheritance or virtual inheritance. –  Max Lybbert Apr 21 '10 at 8:40
1  
"each object created gets an extra hidden table" no, each object created gets a pointer to the vtable (virtual table), called the vptr. Each dynamic class gets one or more vtables. "the vtable, which is an array of pointers-to-functions" no, it is more like a struct with different informations (many pointers to function (sometimes with an offset), a pointer to a char array, sometimes many offsets, pointer to other data structures...) –  curiousguy Aug 5 '12 at 6:32
    
@curiousguy: valid point, I've improved the wording. –  Max Lybbert Aug 7 '12 at 7:41

I don't think the standard makes any guarantees. Compilers can choose to make multiple copies of functions, combine copies that happen to access the same memory offsets on totally different types, etc. Inlining is just one of the more obvious cases of this.

But most compilers will not generate a copy of the code for A::print to use when called through a C instance. There may be a pointer to A in the compiler's internal symbol table for C, but at runtime you're most likely going to see that:

A a; C c; a.print(); c.print();

has turned into something much along the lines of:

A a;
C c;
ECX = &a; /* set up 'this' pointer */
call A::print; 
ECX = up_cast<A*>(&c); /* set up 'this' pointer */
call A::print;

with both call instructions jumping to the exact same address in code memory.

Of course, since you've asked the compiler to inline A::print, the code will most likely be copied to every call site (but since it replaces the call A::print, it's not actually adding much to the program size).

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+1 In the original example, B and C are unrelated, but interpreting it as A and C the argument holds. –  David Rodríguez - dribeas Apr 21 '10 at 7:59
    
yeah... I only checked that the inheritance was public and not virtual, and not which class was inherited. oops. fixed. –  Ben Voigt Apr 21 '10 at 14:28

There will not be any information stored in a object to describe a member function.

aobject.print();
bobject.print();
cobject.print();

The compiler will just convert the above statements to direct call to function print, essentially nothing is stored in a object.

pseudo assembly instruction will be like below

00B5A2C3   call        print(006de180)

Since print is member function you would have an additional parameter; this pointer. That will be passes as just every other argument to the function.

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@yesraaj: I was referring to the class code. Does C class copy print() definition to itself or just uses a pointer to print() in A class? –  Moeb Apr 21 '10 at 5:01
    
@cambr I don't think class will be stored as it is any where. Any way lets wait for few more answers –  yesraaj Apr 21 '10 at 5:08

Check out the C++ ABI for any questions regarding the in-memory layout of things. It's labelled "Itanium C++ ABI", but it's become the standard ABI for C++ implemented by most compilers.

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In your example here, there's no copying of anything. Generally an object doesn't know what class it's in at runtime -- what happens is, when the program is compiled, the compiler says "hey, this variable is of type C, let's see if there's a C::print(). No, ok, how about A::print()? Yes? Ok, call that!"

Virtual methods work differently, in that pointers to the right functions are stored in a "vtable"* referenced in the object. That still doesn't matter if you're working directly with a C, cause it still follows the steps above. But for pointers, it might say like "Oh, C::print()? The address is the first entry in the vtable." and the compiler inserts instructions to grab that address at runtime and call to it.

* Technically, this is not required to be true. I'm pretty sure you won't find any mention in the standard of "vtables"; it's by definition implementation-specific. It just happens to be the method the first C++ compilers used, and happens to work better all-around than other methods, so it's the one nearly every C++ compiler in existence uses.

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"Generally an object doesn't know what class it's in at runtime" an instance of a dynamic class certainly knows its type at runtime! –  curiousguy Aug 5 '12 at 6:41
    
@curiousguy: In C++, classes don't even exist at runtime. It's all just bytes, pointers and smoke. And what are these "dynamic classes" you speak of, anyway? –  cHao Aug 5 '12 at 10:16
    
"classes don't even exist at runtime" No true, typeid(*this).name() certainly does exist at runtime "And what are these "dynamic classes" you speak of, anyway?" classes with a vptr (either for virtual functions or for virtual base classes) –  curiousguy Aug 5 '12 at 13:30
    
@curiousguy: Yeah, typeid's can exist at runtime. Classes, however, don't. The first C++ compiler started as a translator that turned C++ into C -- which, of course, doesn't contain any built-in notion of "classes". Objects became structs, member functions became global functions with slightly mangled names, and virtual functions became vtable entries. To a huge degree, though they now generate machine code directly, they still works this way -- CPUs rarely know or care about "classes" either. Like i said, it's all bytes and pointers...plus a little sleight of hand and misdirection. –  cHao Aug 5 '12 at 16:31
    
As for how RTTI works when the classes no longer actually exist, i presume there's a pointer to a preexisting (compiled-in) type_info in the vtable (probably the first entry). Seems the simplest thing that'd work. –  cHao Aug 5 '12 at 17:08

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