[英]Why does deque::erase() invoke assignment operator?
正如标题所说,为什么deque在erase()期间调用包含类型的赋值运算符? 我可以理解为什么向量可能因为向量中的元素在连续的内存中,但由于deque不能保证连续的内存,为什么它会在删除某些元素时尝试移动它的元素。
此代码无法编译,因为我的Contained类型的赋值运算符被删除,并且它没有移动构造函数。
#include <deque>
class Contained
{
public:
Contained() = default;
~Contained() { }
Contained(const Contained&) = delete;
Contained& operator=(const Contained&) = delete;
};
class Container
{
public:
Container()
{
for(int i = 0; i < 5; i++) { m_containerDS.emplace_back(); }
}
~Container() { }
void clear()
{
m_containerDS.erase(m_containerDS.begin(), m_containerDS.end());
}
private:
std::deque<Contained> m_containerDS;
};
int main()
{
return 0;
}
MSVC编译器发出以下错误消息:
C:\Program Files (x86)\Microsoft Visual Studio 12.0\VC\include\xutility(2527): error C2280: 'Contained &Contained::operator =(const Contained &)' : attempting to reference a deleted function
1> ConsoleApplication13.cpp(12) : see declaration of 'Contained::operator ='
1> C:\Program Files (x86)\Microsoft Visual Studio 12.0\VC\include\xutility(2548) : see reference to function template instantiation '_BidIt2 std::_Move_backward<_BidIt1,_BidIt2>(_BidIt1,_BidIt1,_BidIt2,std::_Nonscalar_ptr_iterator_tag)' being compiled
1> with
1> [
1> _BidIt2=std::_Deque_iterator<std::_Deque_val<std::_Deque_simple_types<Contained>>>
1> , _BidIt1=std::_Deque_iterator<std::_Deque_val<std::_Deque_simple_types<Contained>>>
1> ]
1> C:\Program Files (x86)\Microsoft Visual Studio 12.0\VC\include\deque(1622) : see reference to function template instantiation '_BidIt2 std::_Move_backward<std::_Deque_iterator<std::_Deque_val<std::_Deque_simple_types<Contained>>>,std::_Deque_iterator<std::_Deque_val<std::_Deque_simple_types<Contained>>>>(_BidIt1,_BidIt1,_BidIt2)' being compiled
1> with
1> [
1> _BidIt2=std::_Deque_iterator<std::_Deque_val<std::_Deque_simple_types<Contained>>>
1> , _BidIt1=std::_Deque_iterator<std::_Deque_val<std::_Deque_simple_types<Contained>>>
1> ]
1> C:\Program Files (x86)\Microsoft Visual Studio 12.0\VC\include\deque(1601) : while compiling class template member function 'std::_Deque_iterator<std::_Deque_val<std::_Deque_simple_types<Contained>>> std::deque<Contained,std::allocator<_Ty>>::erase(std::_Deque_const_iterator<std::_Deque_val<std::_Deque_simple_types<_Ty>>>,std::_Deque_const_iterator<std::_Deque_val<std::_Deque_simple_types<_Ty>>>)'
1> with
1> [
1> _Ty=Contained
1> ]
1> ConsoleApplication13.cpp(27) : see reference to function template instantiation 'std::_Deque_iterator<std::_Deque_val<std::_Deque_simple_types<Contained>>> std::deque<Contained,std::allocator<_Ty>>::erase(std::_Deque_const_iterator<std::_Deque_val<std::_Deque_simple_types<_Ty>>>,std::_Deque_const_iterator<std::_Deque_val<std::_Deque_simple_types<_Ty>>>)' being compiled
1> with
1> [
1> _Ty=Contained
1> ]
1> ConsoleApplication13.cpp(31) : see reference to class template instantiation 'std::deque<Contained,std::allocator<_Ty>>' being compiled
1> with
1> [
1> _Ty=Contained
1> ]
简短回答:因为
类型要求
-T必须满足MoveAssignable的要求。
答案很长:即使std::deque没有提供连续内存的要求,它仍然需要提供一个恒定的完整性operator[] 。 这就是它必须移动元素的原因。
这是因为std :: deque经常被实现为环形缓冲区,而环形缓冲区又经常被实现为单片内存缓冲区。 这意味着当您从双端队列中删除元素时,如果已删除的元素不在序列的结尾或开头,则可能需要移动一些元素。 这是插图:
V buffer begins here V buffer ends here
1. [ ] [.] [.] [.] [.] [.] [.] [.] [ ] [ ] [ ]
^first element ^last element
2. [ ] [.] [.] [.] [.] [.] [.] [.] [ ] [ ] [ ]
^ you want to remove this element.
<= these elements should be moved
V V V V
3. [ ] [.] [.] [ ] [:] [:] [:] [:] [ ] [ ] [ ]
^ element have been removed.
实际上,只有在类型没有移动运算符时才使用赋值运算符。 因此,如果您在课程中添加以下行,那么所有内容都可以正常编译:
Contained& operator=(Contained&&) = default;
更新:似乎我错了,因为大多数STL实现现在使用动态数组的一些变体,而不是环形缓冲区。 但是,它们是数组,如果从数组中间删除了一个元素,则需要移动元素。
在std :: vector :: erase()和std :: deque :: erase()中复制/移动赋值
[英]Copy/move assignment in std::vector::erase() and std::deque::erase()
为什么赋值运算符同时调用复制ctor和赋值运算符?
[英]Why does assignment operator call both copy ctor and assignment operator?
为什么在这种情况下需要取消引用“this”? (赋值运算符)
[英]Why does 'this' need to be dereferenced in this case? (assignment operator)
声明:本站的技术帖子网页,遵循CC BY-SA 4.0协议,如果您需要转载,请注明本站网址或者原文地址。任何问题请咨询:yoyou2525@163.com.