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#include<iostream>
#include<memory>
#include<stdio>

using namespace std;

class YourClass
{
   int y;
public:
   YourClass(int x) {
      y= x;
   }
};
class MyClass
{
   auto_ptr<YourClass> p;
public:
   MyClass() //:p(new YourClass(10)) 
   {
      p= (auto_ptr<YourClass>)new YourClass(10);
   }
   MyClass( const MyClass &) : p(new YourClass(10)) {}
   void show() {
      //cout<<'\n'<<p; //Was not working hence commented
      printf("%p\n",p);
   }
};

int main() {
   MyClass a;
   a.show();
   MyClass b=a;
   cout<<'\n'<<"After copying";
   a.show();//If I remove copy constructor from class this becomes NULL(the value of auto_ptr becomes NULL but if class has copy constructor it remains same(unchanged)
   b.show();//expected bahavior with copy construcotr and withought copy constructor
}

Making the problem more specific: Currently the class has copy constructor so there is no problem with the value of auto_ptr printed by a.show()(when it is called second time). It remians the same as it was when it was initiazed). It remians unchanged. If I remove the copy contructor from the class MyClass , the value of auto_ptr printed by a.show()(when it is called second time) is NULL.

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1  
You could also describe what it's not working, instead of doing it in the comments. –  Geo Jan 10 '10 at 12:03
1  
Please format your code more clearly, don't mix old and new style library headers, and indicate WHICH behaviour you find unexpected. –  anon Jan 10 '10 at 12:03
    
cout was not printing the pointer value so i used printf. –  Sandeep Jan 10 '10 at 12:04
    
@Neil - Why the value of P was getting NULL when i call a.show() second time if i remove copy constructor. –  Sandeep Jan 10 '10 at 12:06
    
As explained by Andy below is the exlanation from the link: cplusplus.com/reference/std/memory/auto_ptr/auto_ptr Since auto_ptr objects take ownership of the pointer they point to, when a new auto_ptr is constructed from another auto_ptr, the former owner releases it. Thankg Guys –  Sandeep Jan 10 '10 at 12:32

2 Answers 2

up vote 8 down vote accepted

What's happening is due to the strange (but only justifiable if you think about it) semantics of assigning or copying an auto_ptr, e.g.

auto_ptr<T> a;
auto_ptr<T> b(new T());
a = b; 

... or ...

auto_ptr<T> b(new T());
auto_ptr<T> a(b);

These will set a to b as expected, but they will also set b to NULL (see http://www.cplusplus.com/reference/std/memory/auto_ptr/auto_ptr/).

If you don't define a copy constructor for MyClass, then the compiler will generate one for you and will do just something similar to the above when it copies the auto_ptr member. Hence the copied from class will have a NULL member after the copy constructor has been called.

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@Andy: These will set a to b as expected, but they will also set b to NULL Is there any hidden objective of making b NULL. This seems to be strange as it is not in case of raw pointers. –  Sandeep Jan 10 '10 at 12:24
    
As you probably know, the point of auto_ptr is that when it goes out of scope, the object is destroyed and the memory used is freed. If two auto_ptrs point to the same object (as would be the case if b were not set to NULL) then when should the memory be freed--when a goes out of scope, or when b goes out of scope? If your answer is 'when both have gone out of scope', then consider using boost shared_ptr instead of auto_ptr. –  Andy Jan 10 '10 at 12:34
    
dribeas -- thanks, changed. –  Andy Jan 10 '10 at 12:35
    
@Andy : please check if it auto_ptr<T> b = new T(); works. I think it should be auto_ptr<T> b (new T()); or else you would require cast. auto_ptr<T> b = (auto_ptr<T>) new T() –  Sandeep Jan 10 '10 at 12:37
    
@Sandeep: The problem there is resource management. When the auto pointer goes out of scope it will call delete in the internal pointer, if both auto pointers kept the pointer, then there would be a double delete. The design decision in auto_ptr was that assignment would transfer ownership, which seemed appropriate at the moment, but has proven not to be ideal. In the upcoming standard that single smart pointer will be replaced by three different versions shared_ptr (for reference counted shared ownership), ... –  David Rodríguez - dribeas Jan 10 '10 at 12:39

You shouldn't be casting your class to the autoptr. I know that for sure. I am not sure off the top of my head what syntax it wants but it should be something like p = new YourClass().

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@charles: It(p = new YourClass()) was not compiling withought casting to auto_ptr Error message: Argument of type 'YourClass *' could not be converted to 'const auto_ptr<YourClass> &'. –  Sandeep Jan 10 '10 at 12:14
    
The raw pointer constructor is explicit, so that the correct syntax is: auto_ptr<T> p( new T() ); (call the constructor explicitly). Using the cast will actually perform a similar operation: the cast will create a temporary auto_ptr created with the raw pointer constructor, that temporary will then be used with the copy constructor of the named variable being created. –  David Rodríguez - dribeas Jan 10 '10 at 12:46

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