C++ 实例初始化语法
给定这样的课程:
class Foo {
public:
Foo(int);
Foo(const Foo&);
Foo& operator=(int);
private:
// ...
};
这两行是完全等价的,还是它们之间有细微的差别?
Are these two lines exactly equivalent, or is there a subtle difference between them?
Foo f(42);
Foo f = 42;
<小时>
我通过在原始问题中使 Foo 构造函数显式"来混淆问题.我已将其删除,但感谢您的回答.
I confused matters by making the Foo constructor "explicit" in the original question. I've removed that, but appreciate the answers.
我还添加了复制构造函数的声明,以明确复制可能不是一个简单的操作.
I've also added declaration of a copy constructor, to make it clear that copying may not be a trivial operation.
我真正想知道的是,按照C++标准,Foo f = 42"会直接调用Foo(int)构造函数,还是会调用拷贝构造函数?
What I really want to know is, according to the C++ standard, will "Foo f = 42" directly call the Foo(int) constructor, or is the copy constructor going to be called?
看起来 fasih.ahmed 有我正在寻找的答案(除非它是错误的).
It looks like fasih.ahmed has the answer I was looking for (unless it's wrong).
推荐答案
Foo f = 42;
此语句将为值42"创建一个临时对象.
This statement will make a temporary object for the value '42'.
Foo f(42);
该语句将直接赋值,因此少了一个函数调用.
This statement will directly assign the value so one less function call.
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