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.

Sample code:

MyItemType a;
MyItemType b;
a.someNumber = 5;
b = a;

cout << a.someNumber << endl;
cout << b.someNumber << endl;

b.someNumber = 10;

cout << a.someNumber << endl;
cout << b.someNumber << endl;

The output:

5
5
5
10

If a and b were reference types, the last 2 lines would have been 10 and 10 instead of 5 and 10 I guess.

Does this mean when you do a declaration like this:

AClassType anInstance;

it is treated like a value type?

------Here is MyItemType.h------------

#ifndef MYITEMTYPE_H
#define MYITEMTYPE_H

class MyItemType{

public:
    int someNumber;
    MyItemType();
};

MyItemType::MyItemType(){
}

#endif  /* MYITEMTYPE_H */
share|improve this question
1  
Everything in C++ is a value type, except an explicit reference. You're invoking the default copy assignment operator when you assign a to b. –  Cory Nelson Nov 29 '12 at 20:09
1  
C++ doesn't have value types and reference types. operator= on an object will perform a memberwise copy if it can. –  chris Nov 29 '12 at 20:09

5 Answers 5

up vote 3 down vote accepted

It is not treated like a value type, in fact it is.

While in Java object variables store references to objects, in C++ there is an important difference between an object and its reference. Assignment is by default really by value.

If you want a variable to be just a reference, you use either a reference or a pointer type, depending what you want to with it. These types are declared T* and T&.

To illustrate this a little more:

In Java, when you say MyClass obj, an object is created, but a reference/pointer is stored in the variable obj.

In C++, MyClass obj creates the object and will stored it in obj. If you want to work with references/pointers, you need to declare variables explicity as MyClass* objPointer or MyClass& objReference.

share|improve this answer

Basically, yes (if you consider the C++ equivalent to mean the same as in Java).

AClassType anInstance; is an object, not a reference. MyItemType a and MyItemType b are different objects, they reside in different memory space, so obviously changes to one won't affect the other.

When you do a=b, you don't reference one object with the other, but, in this case, do a member-wise assignment. It's basically like saying

a.someNumber = b.someNumber;
share|improve this answer

In C++ objects are referred to as static (stack) variables when they are created without a pointer reference. Dynamic (heap) variables are pointer references that require manual memory management.

In Java or C#, by contrast, almost all objects are reference types which behave like pointers except they are garbage collected whereas value types are a special subset of all objects that are generally immutable. (C++ stack variables are certainly not immutable).

share|improve this answer

The short explanation is in this key part

b = a;

you are using the copy assignment operator, meaning this sign here =.

the default behaviour of this operator is to apply a memberwise copy, so if you don't define/overload your own operator this row will copy all the values stored in all the members of a in the corresponding members of b.

the new operator it's a complete different story, it's often used to allocate objects on the heap and managing them with a pointer avoiding the stack and unnecessary copies.

share|improve this answer

While C++ does not call objects value or reference types, the behaviour of value and reference types has equivalence in C++.

Given two objects a and b, a = b:

  1. a value type copies the content of b into a keeping them separate objects;
  2. a reference type copies the location of b into a, making them refer to the same object.

For C++:

MyClass  a;      // value type
MyClass  b;      // value type
MyClass &c =  a; // reference type (a reference in C++), fixed to a
MyClass *d = &b; // reference type (a pointer in C++)

 a =  b; // copy content of b into a
 c =  b; // copy content of b into a
 d = &a; // set d to refer to a
*d =  b; // copy content of b into a

Pointers/references may be to value objects, objects allocated by new or some other memory management scheme (e.g. malloc or the Win32 CoTaskMalloc).

share|improve this answer

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.