Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Just out of curiosity: Why C++ choose a = new A instead of a = A.new as the way to instantiate an object? Doesn't latter seems more like more object-oriented?

share|improve this question
    
Why did you make this CW? –  Troubadour Oct 17 '09 at 10:42
    
In Smalltalk new is a normal method call on the class object, e.g. A new. –  starblue Oct 17 '09 at 12:13
1  
I won't downvote this question, but it's pretty stupid, IMHO. Object-orientation is about the way how programs are conceived and structured, not about syntax. –  Eduardo León Oct 18 '09 at 19:34
1  
Sometime stupid question makes me learn a lot. –  pierr Oct 19 '09 at 1:47
    
I think it's a perfectly good question. It is an opportunity to examine some assumptions that people too often make about OOP code. –  jalf Oct 27 '09 at 11:08

8 Answers 8

up vote 12 down vote accepted

Just out of curiosity: Why C++ choose a = new A instead of a = A.new as the way to instance-lize an object? Doesn't latter seems more like more object-oriented?

Does it? That depends on how you define "object-oriented".

If you define it, the way Java did, as "everything must have syntax of the form "X.Y", where X is an object, and Y is whatever you want to do with that object, then yes, you're right. This isn't object-oriented, and Java is the pinnacle of OOP programming.

But luckily, there are also a few people who feel that "object-oriented" should relate to the behavior of your objects, rather than which syntax is used on them. Essentially it should be boiled down to what the Wikipedia page says:

Object-oriented programming is a programming paradigm that uses "objects" – data structures consisting of datafields and methods together with their interactions – to design applications and computer programs. Programming techniques may include features such as information hiding, data abstraction, encapsulation, modularity, polymorphism, and inheritance

Note that it says nothing about the syntax. It doesn't say "and you must call every function by specifying an object name followed by a dot followed by the function name".

And given that definition, foo(x) is exactly as object-oriented as x.foo(). All that matters is that x is an object, that is, it consists of datafields, and a set of methods by by which it can be manipulated. In this case, foo is obviously one of those methods, regardless of where it is defined, and regardless of which syntax is used in calling it.

C++ gurus have realized this long ago, and written articles such as this. An object's interface is not just the set of member methods (which can be called with the dot syntax). It is the set of functions which can manipulate the object. Whether they are members or friends doesn't really matter. It is object-oriented as long as the object is able to stay consistent, that is, it is able to prevent arbitrary functions from messing with it.

So, why would A.new be more object-oriented? How would this form give you "better" objects?

One of the key goals behind OOP was to allow more reusable code.

If new had been a member of each and every class, that would mean every class had to define its own new operation. Whereas when it is a non-member, every class can reuse the same one. Since the functionality is the same (allocate memory, call constructor), why not put it out in the open where all classes can reuse it? (Preemptive nitpick: Of course, the same new implementation could have been reused in this case as well, by inheriting from some common base class, or just by a bit of compiler magic. But ultimately, why bother, when we can just put the mechanism outside the class in the first place)

share|improve this answer
1  
+1 for noting that Object Orientation has absolutely nothing to do with syntax. –  Tom Oct 17 '09 at 18:20

The . in C++ is only used for member access so the right hand side of the dot is always an object and not a type. If anything it would be more logical to do A::new() than A.new().

In any case, dynamic object allocation is special as the compiler allocates memory and constructs an object in two steps and adds code to deal with exceptions in either step ensuring that memory is never leaked. Making it look like a member function call rather than a special operation could be considered as obscuring the special nature of the operation.

share|improve this answer
1  
+1, but it wouldn't be much more logical to do A::new() as long as there's no new() member, returning A*. –  Michael Krelin - hacker Oct 17 '09 at 9:40
    
But that is my point. A::new() would very much be like a static member. As new is a key word and we're talking about 'what if' in the language rules, we can specify that users aren't allowed to define their own member functions called new (as is the case now). –  Charles Bailey Oct 17 '09 at 9:47
    
I know it's your point, that's why +1. It wasn't exactly your words, hence the comment ;-) –  Michael Krelin - hacker Oct 17 '09 at 9:49
    
OK, I thought you were pointing out a necessary extra condition. I was just saying that it could be "ruled out". :) –  Charles Bailey Oct 17 '09 at 10:00
    
No, just picking at the "it would be more logical to do A::new() than A.new()" wording. It's hard to argue whether it's more or less logical, so I just added that it wouldn't be much more logical ;-) –  Michael Krelin - hacker Oct 17 '09 at 10:03

I think the biggest confusion here is that new has two meanings: there's the built-in new-expression (which combines memory allocation and object creation) and then there's the overloadable operator new (which deals only with memory allocation). The first, as far as I can see, is something whose behavior you cannot change, and hence it wouldn't make sense to masquerade it as a member function. (Or it would have to be - or look like - a member function that no class can implement / override!!)

This would also lead to another inconsistency:

 int* p = int.new;

C++ is not a pure OOP language in that not everything is an object.

C++ also allows the use of free functions (which is encouraged by some authors and the example set in the SC++L design), which a C++ programmer should be comfortable with. Of course, the new-expression isn't a function, but I don't see how the syntax reminding vaguely of free-function call can put anybody off in a language where free function calls are very common.

share|improve this answer
    
+1 for pointing out the often overlooked difference between keyword new and operator::new. –  Troubadour Oct 17 '09 at 10:39
1  
Well, actually evrything in storage is an object. What you probably meant to say by your 'int' example is that not every type in C++ is a class type. –  AndreyT Oct 17 '09 at 15:27

please read the code (it works), and then you'll have different ideas:

CObject *p = (CObject*)malloc(sizeof *p);
...
p = new(p) CObject;
p->DoSomthing();
...
share|improve this answer
    
Yes, so-called "placement new" where operator::new does nothing but return the pointer passed into it and so construction is performed at that address i.e. a technique to manually call a constructor. –  Troubadour Oct 17 '09 at 11:26

A.new is a static function of A while a = new A allocates memory and calls the object's constructor afterwards

share|improve this answer

Actually, you can instantiate object with something like A.new, if you add the proper method:

class A{
  public: static A* instance()
  {  return new A(); }
};

A *a = A::instance();

But that's not the case. Syntax is not the case either: you can distinguish :: and . "operations" by examining right-hand side of it.

I think the reason is memory management. In C++, unlike many other object-oriented languages, memory management is done by user. There's no default garbage collector, although the standard and non-standard libraries contain it, along with various techniques to manage memory. Therefore the programmer must see the new operator to understand that memory allocation is involved here!

Unless having been overloaded, the use of new operator first allocates raw memory, then calls the object constructor that builds it up within the memory allocated. Since the "raw" low-level operation is involved here, it should be a separate language operator and not just one of class methods.

share|improve this answer
1  
Thanks for the edit but I fear use of the word "operator" here is still misleading to someone not familiar with this area. The new operator doesn't construct anything. Keyword new has two stages, namely calling the appropriate new operator and then constructing the object at the address returned by the operator. –  Troubadour Oct 18 '09 at 18:58

Why one should have seperate new of each class ?

I dont think its needed at all because the objective of new is to allocate appropriate memory and construct the object by calling constructor. Thus behaviour of new is unique and independent irrespective of any class. So why dont make is resuable ?

You can override new when you want to do memory management by yourself ( i.e. by allocating memory pool once and returning memory on demand).

share|improve this answer

I reckon there is no reason. Its a = new a just because it was first drafted that way. In hindsight, it should probably be a = a.new();

share|improve this answer
1  
a = a.new would seem very inconsistent to me. Assuming that a is an A*, surely a->new would be more consistent but even so why would you have a syntax that might indicate use of an uninitialized pointer in the construction of the new object that it's being initialized to point at? –  Charles Bailey Oct 17 '09 at 9:36
    
A::new would be more meaningful, since it'd have to be a static operation. It doesn't yet have an object to operate on. And yes, it would be pointless and inconsistent. –  jalf Oct 17 '09 at 10:44
    
@jalf: A::new is already taken by the language! The class is allowed to implement a static operator::new which is one half of what keyword new does. –  Troubadour Oct 17 '09 at 10:52
    
true, but the question was why C++ chose to implement it this way, not how a member-like syntax can be bolted onto the existing C++. If C++ had settled on a "member-like" syntax, then for consistency, it should have been A::new. –  jalf Oct 17 '09 at 14:03
1  
And also, it's A::operator new, so A::new is still available. Notice that ::new is also valid, so having A::new be valid would seem logical to me. –  Johannes Schaub - litb Oct 17 '09 at 18:26

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.