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How to push_back() to a C++ std::vector without using operator=() for which the default definition violates having const members?

struct Item {
  Item(int value)
    : _value(value) {
  }
  const char _value;
}

vector<Item> items;

items.push_back(Item(3));

I'd like to keep the _value const since it should not change after the object is constructed, so the question is how do I initialize my vector with elements without invoking operator=()?

Here is the basic error the g++ v3.4.6 is giving me:

.../3.4.6/bits/vector.tcc: In member function `Item& Item::operator=(const Item&)':
.../3.4.6/bits/vector.tcc:238:   instantiated from `void std::vector<_Tp, _Alloc>::_M_insert_aux(__gnu_cxx::__normal_iterator<typename _Alloc::pointer, std::vector<_Tp, _Alloc> >, const _Tp&) [with _Tp = Item, _Alloc = std::allocator<Item>]'
.../3.4.6/bits/stl_vector.h:564:   instantiated from `void std::vector<_Tp, _Alloc>::push_back(const _Tp&) [with _Tp = Item, _Alloc = std::allocator<Item>]'
item.cpp:170:   instantiated from here
.../3.4.6/bits/vector.tcc:238: error: non-static const member `const char Item::_value', can't use default assignment operator
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1  
I think that should work just fine. I'm wondering why you're talking about operator=. It is not called anywhere. –  Nawaz Mar 24 '12 at 17:20
1  
push_back does not need or call operator =() it just makes copies of object being added to the container using the copy constructor.What exactly is the problem? –  Alok Save Mar 24 '12 at 17:20
    
@Als See the error message I added. –  WilliamKF Mar 24 '12 at 17:32
    
@WilliamKF: Check Dietmar's answer and my comment under it.Every answer or comment except his answer are incorrect. –  Alok Save Mar 24 '12 at 17:33
    
A goid implementation of std::vector<T> would still insist on T being assignable because otherwise the code wouldn't be portable. At least this was the case with C++2003 where push_back() typically just called insert(v, end()). It seems in C++ 2011 this freedom isn't given to std::vector<...>. –  Dietmar Kühl Mar 24 '12 at 17:40

1 Answer 1

up vote 10 down vote accepted

For std::vector<T> the elements are required to be Assignable. You type is not Assignable. An implementation of. std::vector<T> could avoid insisting on this requirement but this would be a disservice as the resulting code wouldn't be portable.

You can use a std::list<T> instead or change the definition of you type. For example you can create an accessor to only read the value but no setter. Of course, assignment would change the value. The choice thus is to either allow this change or allow putting the objects into a container. You won't get both.

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+1 Ah nice answer.Everyone commenting or answering(including me) on this Q missed the point that, The basic requirement of any container is that its elements should be copy constructible and assignable.Probably, everyone was misled by the fact that OP mentioned push_back() as an specific case. –  Alok Save Mar 24 '12 at 17:29
    
@Als I would like random access, so am using vector instead of list. Once I place the items in the vector, I have no need to modify them. Is there some way to initialize my vector as desired? Other than this one issue, my program compiles fine, so all other uses of the vector are acceptable to the compiler. –  WilliamKF Mar 24 '12 at 17:36
    
@Dietmar Kühl While I could make my member non-const I feel it would be inferior as something has gone wrong with my program if the _value is modified after insertion into the vector. What container would give me random access but not require me to give up const members? –  WilliamKF Mar 24 '12 at 17:41
    
It seems that C++ 2011 only requires the type to be CopyInsertable or to be MoveInsertable. In C++ 2003 the type certainly had to be CopyAssignable. That is, it may work with a C++ 2011 implementation. –  Dietmar Kühl Mar 24 '12 at 17:47
    
@WilliamKF in C++ 2011 it seems all standard containers should work and in C++ 2003 only std::list<T> would work but this doesn't have random access. –  Dietmar Kühl Mar 24 '12 at 17:50

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