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I am reading the implementation of auto_ptr in C++ STL.

I see that commonly needed operations on pointers like -> and * are overloaded so that they retain the same meaning. However, will pointer arithmetic work on auto pointers?

Say I have an array of auto pointers and I want to be able to do something like array + 1 and expect to get the address of the 2nd element of the array. How do I get it?

I don't have any practical application for this requirement, just asking out of curiosity.

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1  
What have you tried so far? I think you can spend 5 minutes, write a test program and figure this out yourself. –  user405725 Jul 19 '11 at 15:54
2  
An array of auto pointers, or an auto pointer to an array? –  R. Martinho Fernandes Jul 19 '11 at 15:55
    
The standard only allows pointer arithmetic between pointers that point inside the same array (or one past the end of that array). So arithmetic on an auto_ptr would represent a bug by definition. See @Bo's answer. –  Nemo Jul 19 '11 at 15:59
    
The very nature of auto_ptr gives it exclusive ownership of an object. If an additional reference to the object exists elsewhere then ownership is broken. –  Captain Obvlious Jul 19 '11 at 16:12
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Don't do that. auto_ptr does not behave well inside containers. –  R. Martinho Fernandes Jul 19 '11 at 16:46

4 Answers 4

up vote 9 down vote accepted

An auto_ptr can only point to a single element, because it uses delete (and not delete[]) to delete its pointer.

So there is no use for pointer arithmetic here.

If you need an array of objects, the usual advice is to use a std::vector instead.

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we can have array of auto-pointers?. so conceptually does something like : std::vector<auto_ptr<int>> array[10]; auto_ptr<int> onep; onep=array; onep+1 -> display() make sense? –  xyz Jul 19 '11 at 16:46
    
That's an array of vectors of auto_ptr. auto_ptr does not work inside containers. –  R. Martinho Fernandes Jul 19 '11 at 16:49
    
If you are really careful you an have an array of auto_ptrs, but I have never seen one. You can not put them in a vector, because the vector might try to make a copy and lose the pointer. If you want a number of ints you can just use a vector<int> and it will take care of most things, like releasing the memory when you are done. –  Bo Persson Jul 19 '11 at 16:51

You need to see the doccumentation of auto_ptr here.

There is no pointer arithmetic defined for auto_ptr.

auto_ptr<int>  p1(new int(1));  
*p2 = 5;   // Ok
++p2;       // Error, no pointer arithmetic
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This has actually nothing to do with pointer arithmetics.

// applies as well with soon-to-be-deprecated std::auto_ptr
typedef std::unique_ptr<T> smart_ptr;

smart_ptr array[42];

// access second element
array[1];
// take address of second pointer
&array[1];
// take address of second pointee
array[1].get();
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Advancing a pointer down an array of objects still works the same. Here's an example:

#include <memory>
#include <iostream>

int main()
{
  std::auto_ptr<int> foo[3];

  foo[0] = std::auto_ptr<int>( new int(1) );
  foo[1] = std::auto_ptr<int>( new int(2) );
  foo[2] = std::auto_ptr<int>( new int(3) );

  std::auto_ptr<int> *p = &foo[0];

  std::cout << **p << std::endl;
  std::cout << **(p + 1) << std::endl;
}

The output:

1
2
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Here p is your regular pointer, where I know arithmetic operations + work. I am wondering (and trying) if I can do sth like std::auto_ptr<int> p; and then p+1 etc..and have it make some sense.. –  xyz Jul 19 '11 at 16:05
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std::auto_ptr<int> p means p is a pointer to a single integer. So how does p+1 make sense in that case? Also, what is "sth"? –  Praetorian Jul 19 '11 at 16:21
    
sth = something. perhaps not commonly used. yes p+1 will not make sense in this. but I am trying to have an array of auto-pointers and then do arithmetic operations on auto-pointer pointing to base of array. but like someone mentioned that stl defn of auto-pointers do not allow any such arithmetic operators, perhaps because it doesn't make any sense and only complicates things. –  xyz Jul 19 '11 at 16:41
    
Yes, please don't use stuff like "sth". This is not Twitter and you can type more than 140 characters :-). Look at Bo Persson's answer; an auto_ptr cannot be used to hold an array because it will call delete instead of delete[]. You can either use unique_ptr (which has a specialization for array) or a shared_ptr with a custom deleter for an array. –  Praetorian Jul 19 '11 at 16:46

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