考虑我有lamba foo
它只做一些事情并且不需要返回任何东西.当我这样做时:
Consider I have lamba foo
which just does some stuff and doesn't need to return anything.
When I do this:
std::future<T> handle = std::async(std::launch::async, foo, arg1, arg2);
一切正常,lamba 将在新线程中生成.但是,当我不存储 std::async
返回的 std::future
时,foo 将在主线程中运行并阻塞它.>
Everything runs fine and the lamba will be spawned in a new thread.
However, when I don't store the std::future
which the std::async
returns, the foo will be run in the main thread and block it.
std::async(std::launch::async, foo, arg1, arg2);
我在这里遗漏了什么?
来自 just::thread
文档:
如果策略是 std::launch::async
然后在它自己的线程上运行 INVOKE(fff,xyz...)
.当该线程完成时,返回的 std::future
将准备就绪,并将保存函数调用抛出的返回值或异常.与返回的 std::future
的异步状态相关联的最后一个 future 对象的析构函数应阻塞,直到 future 准备好.
If policy is
std::launch::async
then runsINVOKE(fff,xyz...)
on its own thread. The returnedstd::future
will become ready when this thread is complete, and will hold either the return value or exception thrown by the function invocation. The destructor of the last future object associated with the asynchronous state of the returnedstd::future
shall block until the future is ready.
在
std::async(std::launch::async, foo, arg1, arg2);
返回的 future 不会在任何地方赋值,它的析构函数会阻塞直到 foo
完成.
The returned future is not assigned anywhere and its destructor blocks until foo
finishes.
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