运算符<<中的执行顺序
我很难理解下面代码中的调用顺序.我期待看到下面的输出
I have difficulties in understanding the sequence of calls in the code below. I was expecting to see the output below
A1B2
虽然我可以看到我得到的输出是
While I can see that the output I get is
BA12
我认为调用 std::cout<<b->fooA()<
I thought that the call std::cout<< b->fooA() << b->fooB() << std::endl
was equivalent to call
std::cout.operator<<( b->fooA() ).operator<< ( b->fooB() )
但我可以看出事实并非如此.你能帮助我更好地理解它是如何工作的以及与全局 operator<<
的关系吗?这是此序列中的最后一次调用吗?
but I can see that this is not the case. Can you help me understanding better how this does it work and the relationship with the global operator<<
? Is this last ever called in this sequence?
#include <iostream>
struct cbase{
int fooA(){
std::cout<<"A";
return 1;
}
int fooB(){
std::cout <<"B";
return 2;
}
};
void printcbase(cbase* b ){
std::cout << b->fooA() << b->fooB() << std::endl;
}
int main(){
cbase b;
printcbase( &b );
}
推荐答案
编译器可以对函数 printcbase()
求值:
The compiler can evaluate the function printcbase()
as this:
void printcbase(cbase* b ){
int a = b->FooA(); // line 1
int b = b->FooB(); // line 2
std::cout << a; // line 3
std::cout << b; // line 4
stc::cout << std::endl;
}
或标记为 1 - 4 行的许多排列中的一些.您只能保证第 1 行在第 3 行之前完成,第 2 行在第 4 行之前完成(当然还有第 3 行在第 4 行之前).标准没有多说,确实可以预期不同的 C++ 编译器会产生不同的结果.
or some of many permutatins of lines marked as 1 - 4. You are only guaranteed that that the line 1 is done before the line 3, and line 2 before the line 4 (and of course line 3 before line 4). Standard does not say more and indeed you can expect different results with different C++ compilers.
相关文章