7

I have seen few Pet and Dog type examples for this type of basic question here and here, but they do not make sense to me, here is why.

Suppose we have the following class structure

class Pet {};
class Dog : public Pet {};

then the following statement

a (Dog) is a (Pet)

might be true in real life, but is NOT true in C++, in my opinion. Just look at the logical representation of a Dog object, it looks like this:

enter image description here

It is more appropriate to say

a (Dog) has a (Pet)

or

a (Pet) is a subset of (Dog)

which if you notice is a logical opposite of "a Dog is a Pet"


Now the problem is that #1 below is allowed while #2 is not:

Pet* p = new Dog;  // [1] - allowed!
Dog* d = new Pet;  // [2] - not allowed without explicit casting!

My understanding is that [1] should not be allowed without warnings because there is no way a pointer should be able to point to an object of its superset's type (Dog object is a superset of Pet) simply because Pet does not know anything about the new members that Dog might have declared (the Dog - Pet subset in the diagram above).

[1] is equivalent of an int* trying to point to a double object!

Very obviously, I am missing a key point here which would turn my whole reasoning upside down. Can you please tell me what it is?

I believe making parallels to real world examples only complicate things. I would prefer to understand this in terms of technical details. Thanks!

  • 4
    I don't understand how you came to the statement "a (Pet) is a subset of (Dog)". Is your point that there are some dogs that aren't pets? – Oliver Charlesworth Mar 17 '12 at 17:45
  • No, my point is that the Dog object would always 'contain' Pet object members, and hence a Pet* would not be able to point to a Dog object (because there are a few members of Dog which are not Pet members). – Lazer Mar 17 '12 at 17:47
  • 2
    There are some pets that are not dogs - some people have cats or fish, too. – Carl Norum Mar 17 '12 at 17:48
  • 2
    @Lazer: Ah. Then you are conflating the internal makeup of an object (an object is made up of subojects), and the classification (i.e. class) of an object (the set of all Dog objects is a subset of the set of all Pet objects). Inheritance relationships are concerned with the latter. When you say "has a" in your example above, what you really mean is "has the characteristics of". – Oliver Charlesworth Mar 17 '12 at 17:49
  • 1
    Your question seems to boil down to you taking "is a" as commutative. Well, it isn't. "A human is a bunch of atoms" is true, but "a bunch of atoms is a human" is obviously wrong in general. – user395760 Mar 17 '12 at 17:56

11 Answers 11

29

Edit: Re-reading your question and my answer leads me to say this at the top:

Your understanding of is a in C++ (polymorphism, in general) is wrong.

A is B means A has at least the properties of B, possibly more, by definition.

This is compatible with your statements that a Dog has a Pet and that [the attributes of] a Pet is[are] a subset of [attributes] of Dog.


It's a matter of definition of polymorphism and inheritance. The diagrams you draw are aligned with the in-memory representation of instances of Pet and Dog, but are misleading in the way you interpret them.

Pet* p = new Dog;

The pointer p is defined to point to any Pet-compatible object, which in C++, is any subtype of Pet (Note: Pet is a subtype of itself by definition). The runtime is assured that, when the object behind p is accessed, it will contain whatever a Pet is expected to contain, and possibly more. The "possibly more" part is the Dog in your diagram. The way you draw your diagram lends to a misleading interpretation.

Think of the layout of class-specific members in memory:

Pet: [pet data]
Dog: [pet data][dog data]
Cat: [pet data][cat data]

Now, whenever Pet *p points to, is required to have the [pet data] part, and optionally, anything else. From the above listing, Pet *p may point to any of the three. As long you use Pet *p to access the objects, you may only access the [pet data], because you don't know what, if anything, is afterwards. It's a contract that says This is at least a Pet, maybe more.

Whatever Dog *d points to, must have the [pet data] and [dog data]. So the only object in memory it may point to, above, is the dog. Conversely, through Dog *d, you may access both [pet data] and [dog data]. Similar for the Cat.


Let's interpret the declarations you are confused about:

Pet* p = new Dog;  // [1] - allowed!
Dog* d = new Pet;  // [2] - not allowed without explicit casting!

My understanding is that 1 should not be allowed without warnings because there is no way a pointer should be able to point to an object of its superset's type (Dog object is a superset of Pet) simply because Pet does not know anything about the new members that Dog might have declared (the Dog - Pet subset in the diagram above).

The pointer p expects to find [pet data] at the location it points to. Since the right-hand-side is a Dog, and every Dog object has [pet data] in front of its [dog data], pointing to an object of type Dog is perfectly okay.

The compiler doesn't know what else is behind the pointer, and this is why you cannot access [dog data] through p.

The declaration is allowed because the presence of [pet data] can be guaranteed by the compiler at compile-time. (this statement is obviously simplified from reality, to fit your problem description)

1 is equivalent of an int* trying to point to a double object!

There is no such subtype relationship between int and double, as is between Dog and Pet in C++. Try not to mix these into the discussion, because they are different: you cast between values of int and double ((int) double is explicit, (double) int is implicit), you cannot cast between pointers to them. Just forget this comparison.

As to [2]: the declaration states "d points to an object that has [pet data] and [dog data], possibly more." But you are allocating only [pet data], so the compiler tells you you cannot do this.

In fact, the compiler cannot guarantee whether this is okay and it refuses to compile. There are legitimate situations where the compiler refuses to compile, but you, the programmer, know better. That's what static_cast and dynamic_cast are for. The simplest example in our context is:

d = p; // won't compile
d = static_cast<Dog *>(p); // [3]
d = dynamic_cast<Dog *>(p); // [4]

[3] will succeed always and lead to possibly hard-to-track bugs if p is not really a Dog.
[4] will will return NULL if p is not really a Dog.

I warmly suggest trying these casts out to see what you get. You should get garbage for [dog data] from the static_cast and a NULL pointer for the dynamic_cast, assuming RTTI is enabled.

  • thanks for details, yours and amit's answers are exactly what I was looking for. But, why is the int-double example invalid? ideone.com/QRa3s – Lazer Mar 17 '12 at 18:27
  • Nowhere does the language specify that int is derived from double or vice-versa. This is the only reason. If they were defined as subclasses of one another, then pointers to them would be castable, but they are not. Try compiling int *i; double *d; i = d; d = i;, just won't work (without casting, which is, semantically, a different cast than what I wrote above, it's the equivalent of reinterpret_cast in this case). – Irfy Mar 17 '12 at 18:35
  • Comparing int and double would be more like comparing Dog to a Cat which do not share any supertypes (like Pet), but have some common data. – Irfy Mar 17 '12 at 18:37
  • @Irfy a sentce in your answer: The pointer p expects to find [pet data] at the location it points to. Since the right-hand-side is a Dog, and every Dog object has [pet data] in front of its [dog data], pointing to an object of type Dog is perfectly okay .Then assume a case there is another classAnimal now Pet:Animal (inherits) and Dog:Pet(inherits) in this case it would be a [Animal][Pet][Dog]. In such case how can pointer to Pet point to Dog. – sql_dummy Aug 10 '16 at 12:17
  • The simplified memory layout of a Pet object will be [animal data][pet data], and that of a Dog will be [animal data][pet data][dog data] (you may be thinking that Dog would just have [pet data][dog data], but that is incorrect -- it inherits Pet's supertypes as well). Now having cleared this up: a pointer to Pet will expect to see [animal data][pet data] wherever it points to. Since a Dog object fulfills that requirement, a Pet pointer may point to a Dog object. – Irfy Aug 11 '16 at 12:25
5

In terms of technical details:

The additional information of a Dog object is appended to the end of the Pet object, so the prefix [in bits] of Dog is actually a Pet, so there is no problems to assign a Dog* object to a Pet* variable. It is perfectly safe to access any of Pet's fields/methods of the Dog object.

However - the oposite is not true. If you assign the address of the Pet* to a Dog* variable and then access one of the fields of Dog [which is not in Pet] you will get out of the allocated space.

Typing reasoning:
Also note that a value can be assigned to a variable only if it is of the correct type without casting [c++ is static typing langauge]. Since Dog is a Pet, Dog* is a Pet* - so this is not conflicting, but the other way around is not true.

  • 1
    This is the only answer so far that tells what I was looking for. But @amit, if we assign a Dog* object to a Pet* pointer, we will never be able to access some of the Dog members. Isn't that an information loss equivalent of converting a double to an int? – Lazer Mar 17 '12 at 17:57
  • @Lazer: You will never be able to access the Dog members through that particular pointer. Nothing has been lost, you're simply expressing the fact that you're happy to work with a generic Pet. – Oliver Charlesworth Mar 17 '12 at 17:58
  • There's no information lost, you just can't access those members. If you are referring to a particular Dog object as a Pet, all you know is that it's a Pet. You don't know if it's a Dog or a Cat or a NorwegianBlueParrot. If you want to work with the Dog interface, just use a Dog variable - problem solved. – Carl Norum Mar 17 '12 at 17:59
  • @OliCharlesworth: Fair enough. But, this is why I think example 2 in my question (Dog* d = new Pet;) is perfectly okay, because we can access all the members of our Pet object! – Lazer Mar 17 '12 at 18:00
  • @Lazer, but what if you try to access a Dog-specific member? CRASH. You can't tell someone "Hey, here's a Dog object" and not allow them to call Dog methods. – Carl Norum Mar 17 '12 at 18:01
4

A Dog is a Pet because it derives from class Pet. In C++ that pretty much fulfills the is-a requirement of OOP. What is the Liskov substitution principle

Dog* d = new Pet;  // [2] - not allowed without explicit casting!

Of course it is not allowed, a Pet could just as well be a cat or a parrot.

  • Thats what my point is. A Pet would never be a Cat or a Parrot. Rather, a parrot or a cat might contain Pet data members, which is perfectly fine. – Lazer Mar 17 '12 at 17:49
  • 1
    A cat can have a pet, but I bet that's unusual. – Bo Persson Mar 17 '12 at 17:52
  • Yes, in real life, but we are talking about C++! – Lazer Mar 17 '12 at 17:53
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    @Lazer Programming is modeling a reality for the computer to process, the fact that the Dog type contains a Pet sub object does not mean that Pet is a subset of Dog, a Cat is a Pet but not a Dog. You are mixing containment of a sub object with taxonomies of objects. You are focusing too much on the internal details of how it is implemented, and not enough on the interfaces. A Pet can be fed but cannot bark, a Dog can be fed (it behaves like a Pet) but can also bark. For all intents and purposes, a Dog behaves like a Pet. Read on Liskov! – David Rodríguez - dribeas Mar 17 '12 at 17:57
4

It's an issue of hierarchical classification. If I tell my kids they can have a pet, then a dog is most certainly allowed. But if I tell them they can only have cat, then they cannot ask for a fish.

  • I believe that is not how it works in C++, basically that is what my confusion is about. The Pet example does not apply to inheritance in C++ according to me. – Lazer Mar 17 '12 at 17:50
  • 5
    @Lazer No, this is exactly how it works in C++. void foo(Pet*) can take a Dog*, but void bar(Cat*) cannot take a Fish*. – chrisaycock Mar 17 '12 at 17:53
2

I think you are confusing what is-a is intended to mean in the OO context. You can say that a Dog has a Pet sub object, and that is true if you go down to the bit representation of the objects. But the important thing is that programming is about modeling a reality into a program that a computer can process. Inheritance is the way that you model the relationship is-a, as per your example:

A Dog is-a Pet

In common parlance means that it exhibits all behaviors of a Pet, with maybe some characteristic behaviors that differ (barks) but it is an animal and it provides company, you can feed it... All those behaviors would be defined by (virtual) member functions in the Pet class and might be overridden in the Dog type, as other operations are defined. But the important part is that by using inheritance all instances of Dog can be used where an intense of Pet is required.

1

You've gotten confused between base and parent classes.

Pet is the base class. A Pet* could point any number of different types, so long as they inherit from Pet. So it's no surprise that Pet* pet = new Dog is allowed. Dog is a Pet. I have a pointer to a Pet, which happens to be a Dog.

On the other hand, if I have a Pet*, I have no idea what it actually points to. It could point to a Dog, but it could also point to a Cat, a Fish, or something else entirely. As such, the language won't let me call Pet->bark() because not all Pets can bark() (Cats meow(), for instance).

If, however, I have a Pet* that I know is, in fact, a Dog, then it's entirely safe to cast to a Dog, and then call bark().

So:

Pet* p = new Dog;  // sure this is allowed, we know that all Dogs are Pets
Dog* d = new Pet;  // this is not allowed, because Pet doesn't support everything Dog does
0

In English, the statements you're trying to work out might be 'The aspects of a dog which cause it to be a pet are a subset of all the aspects of a dog' and 'the set of all entities which are dogs are a subset of the set of entities which are pets'.

D,P such that D(x) => x ∈ Dog, P(x) => x ∈ Pet

  D(x) => P(x)

(D(x) is true if x has all the aspects of a dog, so this is saying that the aspects of a thing which is a dog are a super set of the aspects of things which are pets - P(x) is true if D(x) is true, but not necessarily the other way round)

Dog ⊇ Pet =>

  ∀ x x ∈ Dog => x ∈ Pets (every dog is a pet)

But if D(x) ≡ x ∈ Dog, then these are the same statement.

So saying 'the aspects of a Dog which make it a pet are a subset of the dog as a whole' is equivalent to saying 'the set of dogs is a subset of the set of pets'

0

Consider this scenario (sorry for such a cheesy example):

A vehicle can be any vehicle

class Vehicle
{
   int numberOfWheels;
   void printWheels();
};

A Car is a vehicle

class Car: public Vehicle
{
    // the wheels are inherited
    int numberOfDoors;
    bool doorsOpen;
    bool isHatchBack;
};

A bike is a vehicle, but this vehicle is not a Car which is a vehicle too

class Bike: public Vehicle
{
    int numberOfWings; // sorry, don't know exact name
    // the wheels are inherited
};

So I hope not only you can see real life difference, but also notice that the memory layout in the program will be different for Bike and Car objects even though they're both Vehicles. That's why a child object cannot be any type of child; it can be only what was defined to be.

0

All the answers above are good. I just wanna add one more thing. I think your diagram of dog/pet is misleading.

I understand why you sketched the DOG diagram as a superset of the PET one: you probably thought that, since a Dog has more attributes than a pet, it needs to be represented by a bigger set.

However, whenever you draw a diagram where a set B is a subset of a set A, you are saying that the number of objects of type B is for sure NO MORE than the objects of type A. On the other hand, since the objects of type B have more properties, you are allowed to do more operations on them, since you can do ALL the operations allowed on objects of type A PLUS some more.

If you happen to know something about functional analysis (it's a long shot, but maybe you saw it), it's the same relation that exists between banach spaces and their duals: the smaller the space, the bigger the set of operation you can do on them.

0

The actual reason is - a derived class has all information about a base class and also some extra bit of information. Now a pointer to a derived class will require more space and that is not sufficient in base class. So the a pointer to a derived class cannot point to it. While on the other hand the reverse is true.

0

Based on some of previous answers I developed some understanding and I am putting them in my words. Based on some of previous answers I developed some understanding and I am putting them in my words

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