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I am getting following error error: invalid conversion from ‘const int*’ to ‘int*’ Following is my program

#include <set>
int main ( int argc, char **argv) {
    std::set<int> intSet;
    intSet.insert(1);
    intSet.insert(2);
    intSet.insert(3);
    intSet.insert(4);
    intSet.insert(5);

    int *pAddress = &(*(intSet.find(4)));
}

I want address of the element in the std::set , This code does not give any compilation error with Microsoft compiler but g++ is giving this compilation error.

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The elements of std::set are constant, in your case constant integers. what MS compiler are you using? –  cpx Oct 18 '11 at 6:00
    
Visual Studio 2005 –  Avinash Oct 18 '11 at 6:09
2  
It's bug in VS2005 which allow std::set to be modified. –  cpx Oct 18 '11 at 6:10
    
@cpx: Actually, the bug is in GCC; it's valid to modify the set elements as long as you don't affect the ordering. See here and here. –  Mike Seymour Oct 18 '11 at 6:36
    
(Or at least it was valid in C++03. The rules have changed in C++11.) –  Mike Seymour Oct 18 '11 at 7:11

3 Answers 3

up vote 5 down vote accepted

It is because each element of std::set is stored as T const, and the implementation has a reason to do so.

Since std::set contains exactly a single copy of a value. It has to make it immutable, otherwise, one can change it's value to something which already exists in the set.

Even if the elements were mutable, you would not be able the change the value, because std::set::find is a const member function, and therefore in this function intSet is immutable and effectively each elements would become immutable as well, including the iterator which it returns, and through which you may change the value at the call-site.

The only want to take the address is this:

int const *paddress =  &(*(intSet.find(4))); //const int* is same as int const*

Don't use const_cast though,

//DANGEROUS - DONT DO IT
int *paddress =  const_cast<int*>(&(*(intSet.find(4)))); //will compile, 
                                                       //but it is dangerous!

//you might accidentally write
*paddress = 10; //undefined behaviour, 
                //though the compiler will let you write this
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Since I just need address of the element, would it be ok to typecast to non-cast –  Avinash Oct 18 '11 at 6:10
    
@Avinash: I added more stuffs to my answer. –  Nawaz Oct 18 '11 at 6:14
    
Set elements are stored as T, not T const, and may be modified as long as you don't affect the ordering. GCC's behaviour, while safer, is nonconformant. –  Mike Seymour Oct 18 '11 at 6:37
2  
(Actually, GCC's behaviour is allowed by C++11; it looks like I need to update my knowledge) –  Mike Seymour Oct 18 '11 at 7:10
1  
@DavidRodríguez-dribeas: it doesn't allow the key type to be const T, but it does state that keys are immutable (23.2.4/5), and that iterator is a constant iterator, which may or may not be the same type as const_iterator (23.2.4/6). –  Mike Seymour Oct 18 '11 at 7:43

GCC defines set::iterator to be set::const_iterator, preventing you from binding a non-const reference or pointer to the result of set::find(). This behaviour is allowed by C++11 (which states that keys are immutable, and that set::iterator is a constant iterator), but was incorrect in C++03.

In C++03, you shouldn't modify the elements of a set since that can break the ordering of elements within it. In some cases, you might want to - if the type is a class, and only some members are used to define the ordering, then it was valid to modify other members. The C++03 standard allows this, but you must be careful not to modify the order as that will give undefined behaviour. In C++11, this isn't allowed, and the implementation may prevent this.

In your case, you can't legally modify the value at all, so you can fix your code for C++11, and also improve its safety, by binding to a pointer-to-const.

int const *pAddress = &(*(intSet.find(4)));
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2  
Which standard allows this, because in n3225 associative container requirements it is quite clear: "For set and multiset the value type is the same as the key type. ... Keys in an associative container are immutable." and "For associative containers where the value type is the same as the key type, both iterator and const_iterator are constant iterators. It is unspecified whether or not iterator and const_iterator are the same type." - It is even mentioned in the bug report discussion that GCC is considered conforming. –  UncleBens Oct 18 '11 at 6:57
    
@UncleBens: I was looking at C++03, which doesn't have those clauses, but does specify that iterator is an "iterator type pointing to T" for all containers. I'll update my answer for C++11. –  Mike Seymour Oct 18 '11 at 7:02

The values of the set are meant to be immutable so that the class can guarantee that all of the elements are unique. Giving you a non-const pointer would make it too easy for you to change the value, which would break the design of the set template class (http://msdn.microsoft.com/en-us/library/e8wh7665(VS.80).aspx).

You should change the last line to have a "const" in front of it like so:

const int *pAddress = &(*(intSet.find(4)));

FYI: Your code gives an identical compilation error in Visual Studio 2010.

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