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.

My basic program structure is this:

class B1 
{
    vector <someStruct> aStruct; //some struct contains a vector of 'someotherStruct's, etc
    B1() { cout << &aStruct << " ";};
};


class B2 {B1* pB1;};

class A
{
    B1 object_B1;
    B2 object_B2;

    A() { objectB2.pB1 = &object_B1;}; 
};

int main()
{
    vector <A> someA;
    for(int q=0; q < N; q++)
        someA.push_back(A()); 

    cout << endl;

    for (int q=0; q < N; q++)
        cout << someA[q].B2.pB1 << " ";
}

So if N was 5, the output would be: 0xbffff828 0xbffff828 0xbffff828 0xbffff828 0xbffff828 \n
0xbffff828 0xbffff828 0xbffff828 0xbffff828 0xbffff828

In other words, each object's vector occupies the same space in memory. And program output bears this out as well, since accessing data in the vector through different objects gives the same values, even when they should be different. The other weird thing, of course, is it gives me the same address for the vector as for the object.

share|improve this question
3  
So many syntax error. Why don't people try compiling their sample code before posting here? –  Nawaz Feb 20 '11 at 5:09

2 Answers 2

up vote 2 down vote accepted

You are missing a copy ctor for A and the default copy semantics copy the pointer value from one B2 object to another. Each item in the struct sees the same address because they are all copied from the same source object. When this pointed-to object is later destroyed, you'll have UB accessing it.

A a1;
A a2 = a1;
assert(a2.object_B2.pB1 == &a1.object_B1);  // Danger Will Robinson!

The fix:

struct A {
  B1 object_B1;
  B2 object_B2;

  A() { objectB2.pB1 = &object_B1; }
  A(A const &x)
  : object_B1 (x.object_B1)
  {
    object_B2.pB1 = &object_B1;
  }
};

You also need a copy-assignment operator because the default one has a similar problem. Declare this op= as private without defining it if you want it disabled.

share|improve this answer
    
I don't understand what the argument to the copy constructor is supposed to be. And why do I have to change object_B1 to x? can't I just change the value in object_B2.pB1? –  Matt Munson Feb 20 '11 at 5:45
    
@MattMunson: The argument to the copy ctor is the source of the copy; in "A a2 = a1;", x is a reference to a1. –  Fred Nurk Feb 20 '11 at 6:03
    
If I leave out the line, ': object_B1 (x.object_B1)' does that mean that object_B1 will still have the same address as it did in the object it's copied from? –  Matt Munson Feb 20 '11 at 6:25
    
@MattMunson: That is a "constructor initializer"; look that up. It has nothing to do with the addresses of either this->object_B1 or x.object_B1; what it does is copy the one object's value to the other, which in this case copies B1's vector data member. –  Fred Nurk Feb 20 '11 at 6:35
1  
@MattMunson: More or less, yes. A class almost always has a copy ctor in C++ (the compiler generates one if you don't declare one) and "copy ctor" means a very specific set of signatures. Looking up the "Rule of Three" will probably help. –  Fred Nurk Feb 20 '11 at 7:12

Ignoring the large number of errors in the program...

A.push_back(A());

This creates a temporary object of type A. The object_B2.pB1 member variable is initialized to point to the object_B1 member variable of this temporary object.

This temporary A object is then copied into the someA container. The address of this copy's object_B1 member variable is different, but you don't update the object_B2.pB1 member variable to point into the new instance. To do this, you would need to implement a copy constructor (and, for correctness, you would also need to implement a copy assignment operator).

The reason that all of the pointers end up being the same is that the temporary objects are all created in the same location in memory, which makes since, since you are presumably calling push_back in a loop, so the temporary object can be created on the stack in the same place at each iteration through the loop.

share|improve this answer
    
@Nawaz: Yes, it should, and it will, and that is exactly the behavior that the OP is asking about. –  James McNellis Feb 20 '11 at 5:11
    
The default copy-constructor should copy the address as well. –  Nawaz Feb 20 '11 at 5:12
    
@Nawaz: And that is exactly the problem, see the explicit test case in my answer. –  Fred Nurk Feb 20 '11 at 5:14
    
@Fred and @James : I think I misread the question, probably because it's not clear enough. –  Nawaz Feb 20 '11 at 5:18

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.