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Having very similiar code like so:

LINT_rep::Iterator::difference_type LINT_rep::Iterator::operator+(const Iterator& right)const
{
    return (this + &right);//IN THIS PLACE I'M GETTING AN ERROR
}

LINT_rep::Iterator::difference_type LINT_rep::Iterator::operator-(const Iterator& right)const
{//substracts one iterator from another
    return (this - &right);//HERE EVERYTHING IS FINE
}

err msg: Error  1   error C2110: '+' : cannot add two pointers

Why I'm getting an err in one place and not in both?

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6 Answers

up vote 30 down vote accepted

Pointer addition is forbidden in C++, you can only subtract two pointers.

The reason for this is that subtracting two pointers gives a logically explainable result - the offset in memory between two pointers. Similarly, you can subtract or add an integral number to/from a pointer, which means "move the pointer up or down". Adding a pointer to a pointer is something which is hard to explain. What would the resulting pointner represent?

If by any chance you explicitly need a pointer to a place in memory whose address is the sum of some other two addresses, you can cast the two pointers to int, add ints, and cast back to a pointer. Remember though, that this solution needs huge care about the pointer arithmetic and is something you really should never do.

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ł but as you see from def. of this operators I'm returning difference value not a pointer(iterator) but of course I'm getting the idea, and I agree with you. –  There is nothing we can do May 29 '10 at 12:47
    
You are returning a difference, but unless you return an integral type you have an implicit cast. this + &right has to be evaluated before its result is cast to LINT_rep::Iterator::difference_type and returned, and this evaluation fails, as the operator + is not defined for pointer operands. This is why it fails, even if it may seem sensible. –  Michał Trybus May 29 '10 at 12:52
6  
Casting to int is a bad idea, since sizeof(int) might not be sizeof(void *). Using something like ptr_diff_t would be a better choice. –  Mike Weller May 29 '10 at 12:54
    
@Mike: I know, just gave an example, but sure, ptrdiff_t is a better idea. The question is, why to even bother adding two pointers? –  Michał Trybus May 29 '10 at 12:56
1  
knows a compiler/runtime/OS combination where sizeof(ptrdiff_t) != sizeof(void *). I'd say use [u]intptr_t if you're going to attempt this at all. –  Logan Capaldo May 29 '10 at 15:00
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742 Evergreen Terrace + 1 = 743 Evergreen Terrace

742 Evergreen Terrace - 1 = 741 Evergreen Terrace

743 Evergreen Terrace - 741 Evergreen Terrace = 2

743 Evergreen Terrace + 741 Evergreen Terrace = ???

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I don't get it. –  Indrek May 29 '10 at 14:44
    
@Indrek What do you propose the result of the fourth line should be? It simply does not make sense to add two addresses. –  FredOverflow May 29 '10 at 15:12
1  
:) Nice answer. Really, I mean it. –  SigTerm May 30 '10 at 2:46
    
@Fred: 1484 Evergreen Terrace. Duh. ;-) (I agree with @SigTerm: Good example) –  James McNellis May 30 '10 at 2:59
    
Degrees provide an even clearer explanation, except "degrees" can mean both absolute temperature and temperature difference, so most people don't understand that they are distinct units. For example 85 degrees + 5 degrees difference=90 degrees 100 degrees - 5 degrees difference=95 degrees 100 degrees - 95 degrees= 5 degrees difference 100 degrees + 50 degrees = ? –  Jeremy Salwen May 30 '10 at 3:00
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Subtracting two pointers gives you the distance between them. What would the result of adding two pointers be?

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I was thinking that if I can do (4 - 2) I can also do (4 + 2); Obviously it's not the case. –  There is nothing we can do May 29 '10 at 12:40
    
A pointer to a random chunk of memory at the address indicated by the sum of the pointers' addresses? ;) –  Jake Petroules May 29 '10 at 12:42
    
@Jake but isn't that the same if I substract bigger address from smaller address? –  There is nothing we can do May 29 '10 at 12:45
    
Let's say you have two int pointers, ptr1 and ptr2. Then ptr1 - ptr2 = the difference between the pointers -- ie: the number of ints that the space between ptr1 and ptr2 takes up. ptr2 - ptr1 should be the same as -(ptr1 - ptr2). –  cHao May 29 '10 at 12:55
11  
@KMKY, If you can do (date2 - date1), yielding a time interval, can you also do (date2 + date1)? What would it yield? –  Marcelo Cantos May 29 '10 at 12:58
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Other answers explained already why, what You are doing doesn't work, but my guess is, that You want to define typical operator+ for an iterator, but got lost in that attempt.

Both pointers and standard random access iterators allow to advance the pointer or iterator by an integral value. In case of iterators, an operator+ is defined, that takes an integral value as an argument and returns an iterator.

LINT_rep::Iterator LINT_rep::Iterator::operator+(int distance) const;

You can define such operator as a method, but this method will allow You to write

iterator + distance

but not

distance + iterator

To make the addition commutative You have to define a friend non-member function that takes the distance as the first parameter and an iterator object as a second

friend LINT_rep::Iterator LINT_rep::Iterator::operator+(int distance, const  LINT_rep::Iterator & rhs);
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I suppose in your example the result you were expecting was to add or subtract a pointer to an offset to be moved, not to another pointer.

In C++ you can subtract 2 pointers (getting the offset in memory between them) or add a pointer to an integer value (moving a pointer to another memory location being incremented by value * sizeof(object_class)). Just adding 2 pointers do not make sense in C++, but if you are sure you want to add 2 memory locations adresses, just add then as unsigned integer values (using typecast).

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Except in 64 bit compilers where sizeof(x*) > sizeof(int). There's no guarantee about the size of pointers as related to the size of any other type. –  cHao May 29 '10 at 21:40
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Why I'm getting an err in one place and not in both?

Even if you were allowed to add two pointers, this:

 return (this + &right);

would point to nowhere. Think about it - this might be something like 0x00123456, and &right will be somewhere in the same range (0x00000000..0x80000000 - i.e. 0x00321321, for example). If you add them up, the resulting address will point very far away from both variables (0x00123456 + 0x00321321 == 0x00444777, which will be way too far from both "this" and &right), you might get into reserved memory (0x8xxxxxxx on win), etc. Also, pointers could overflow. Which is (probably) why it is forbidden.

If you want to add something to pointer, add integer.

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