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I'm hunting a bug in code and I have a problem:

 class a
 {
 public:
 void foo(int a) {}
 }

  std::set<a*> set;
  std::set<a*>::iterator it = set.begin();

  it->foo(55); //gives me error:
  // error: request for member ‘foo’ in ‘* it.std::_Rb_tree_const_iterator<_Tp>::operator-><a*>()’, which is of pointer type ‘a* const’ (maybe you meant to use ‘->’ ?)

Why it doesn't allow me to use non-const function on it? What can I do to have a set of non-const pointers without using casting?

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2  
try (*it)->foo(55). –  andre Jan 30 '13 at 14:45
    
The iterator returns you a const reference, because you are not allowed to modify the value it refers to (since it is used as the key into the std::set). But that's not your problem here. –  Sander De Dycker Jan 30 '13 at 14:47
1  
@Sander De Dycker yes, it's not the problem. with double dereference everything works. –  user1873947 Jan 30 '13 at 14:49
    
By the way: the pointers stored in an std::set are const. But they are not pointers to const. –  Gorpik Jan 30 '13 at 15:29

3 Answers 3

up vote 7 down vote accepted

You need to dereference twice:

(*it)->foo(55);

it is an iterator to a pointer. Your code would be correct if you had an std::set<a> instead of an std::set<a*>.

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Thanks. I need to store pointers in the set. –  user1873947 Jan 30 '13 at 14:45

The issue is you need to deference the iterator and then the pointer. replace it->foo(55); with (*it)->foo(55); This will work.

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You're one level of indirection out.

(*it)->foo(55);

works, as it is effectively a pointer to the type stored, which is itself a pointer.

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