根据这个演讲在 Qt 容器上使用 C++11 范围基础 for
时的陷阱.考虑:
According to this talk there is a certain pitfall when using C++11 range base for
on Qt containers. Consider:
QList<MyStruct> list;
for(const MyStruct &item : list)
{
//...
}
根据谈话,陷阱来自隐式共享.在引擎盖下,基于范围的 for 从容器中获取迭代器.但是因为容器不是 const,所以 interator 将是非常量的,这显然足以让容器分离.
The pitfall, according to the talk, comes from the implicit sharing. Under the hood the ranged-based for gets the iterator from the container. But because the container is not const the interator will be non-const and that is apparently enough for the container to detach.
当您控制容器的生命周期时,这很容易解决,只需将 const 引用传递给容器以强制它使用 const_iterator 而不是分离.
When you control the lifetime of a container this is easy to fix, one just passes the const reference to the container to force it to use const_iterator and not to detach.
QList<MyStruct> list;
const Qlist<MyStruct> &constList = list;
for(const MyStruct &item : constList)
{
//...
}
但是,例如容器作为返回值.
However what about for example containers as return values.
QList<MyStruct> foo() { //... }
void main()
{
for(const MyStruct &item : foo())
{
}
}
这里发生了什么?容器还在复制吗?直觉上我会说这是为了避免可能需要这样做?
What does happen here? Is the container still copied? Intuitively I would say it is so to avoid that this might need to be done?
QList<MyStruct> foo() { //... }
main()
{
for(const MyStruct &item : const_cast<const QList<MyStruct>>(foo()))
{
}
}
我不确定.我知道它有点冗长,但我需要这个,因为我在大型容器上大量使用基于范围的 for 循环,所以谈话对我来说是正确的.
I am not sure. I know it is a bit more verbose but I need this because I use ranged based for loops heavily on huge containers a lot so the talk kind of struck the right string with me.
到目前为止,我使用辅助函数将容器转换为常量引用,但如果有更简单/更短的方法来实现相同的目标,我希望听到它.
So far I use a helper function to convert the container to the const reference but if there is a easier/shorter way to achieve the same I would like to hear it.
template<class T>
std::remove_reference_t<T> const& as_const(T&&t){return t;}
可能会有所帮助.由于非常量迭代,返回右值的隐式共享对象可以隐式检测写入分片(和分离).
might help. An implicitly shared object returned an rvalue can implicitly detect write-shraring (and detatch) due to non-const iteration.
这给你:
for(auto&&item : as_const(foo()))
{
}
它允许您以 const 方式(而且非常清楚)进行迭代.
which lets you iterate in a const way (and pretty clearly).
如果你需要引用生命周期延长来工作,有 2 个重载:
If you need reference lifetime extension to work, have 2 overloads:
template<class T>
T const as_const(T&&t){return std::forward<T>(t);}
template<class T>
T const& as_const(T&t){return t;}
但是迭代 const 右值并关心它通常是一个设计错误:它们是丢弃的副本,为什么编辑它们很重要?如果你基于 const 限定的行为非常不同,那会在其他地方咬你.
But iterating over const rvalues and caring about it is often a design error: they are throw away copies, why does it matter if you edit them? And if you behave very differently based off const qualification, that will bite you elsewhere.
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