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I'm learning C++ and there is something I don't get about assignment operators. As far as I understand, they are supposed to provide deep copies of object. Here is an example

Test::Test(int i){
    value = i;
}

Test& Test::operator=(const Test& rhs){
    value = rhs.value;
    return *this;
}

Now:

Test* t1 = new Test(1);
Test* t2 = t1;  //t2 should be now a deep copy of t1
t1->value = 2;
cout << t1->value;
cout << t2->value;

Output is 22 but I expected '21'. What is the obvious thing I am missing here?

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4  
Java programmer? –  Benjamin Lindley May 25 '13 at 18:52
2  
There's no assignment going on, and you shouldn't need any pointers like that to create objects. Your assignment operator basically does what the default one does, and your constructor would be better off with a constructor initialization list. –  chris May 25 '13 at 18:53
1  
A copy assignment can do either a deep copy or a shallow copy. It all depends on the requirements of the class and you shouldn't assume one or the other is always supposed to happen. –  Captain Obvlious May 25 '13 at 18:55
1  
A copy always copies the value of an object. So the question is, what is the value of the object? For a string, or a vector, that is it's contents, thus it acts like a deep copy. A pointer however, the value is the address of the pointee, so that act like a shallow copy. –  Mooing Duck May 25 '13 at 19:09

1 Answer 1

up vote 5 down vote accepted

Short answer

As Captain Obvlious suggests, call your assignment operator with

Test t2 = *t1

"Longer" answer

With this line

Test* t2 = t1

You are just making an assignment between pointers, so you are declaring a pointer to Test called t2 which will hold the same address held by the pointer t1.

When you modify the object using t1, you are actually changing the same object that also t2 is pointing to (this explains the output).

If you want to copy t1, you should use one of the following two ways:

Create a new Test object and copy construct it with t1:

Test t1;
Test t2(t1)

This code will call the copy constructor of the class Test:

Test::Test(const Test& t);

Use the assignment operator on an existing Test object:

Test t2;
t2 = t1;

As a general rule of thumb, when you need to define an operator=, then you probably need to define also a copy constructor and a destructor.

See the Rule of Three for more details.

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This. No copying of any kind is taking place, the assignment operator isn't getting called, etc. etc. etc. –  Carl Norum May 25 '13 at 18:56
2  
How about Test t2 = *t1 as a solution for the OP ;) –  Captain Obvlious May 25 '13 at 19:00
    
@CaptainObvlious will add that as a short answer :) –  Vincenzo Pii May 25 '13 at 19:04

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