#include <iostream>
#include <string>
using namespace std;
class person
{
friend ostream& operator<<(ostream &cout,person p);
private:
int m_a;
int m_b;
public:
person(int a,int b)
{
m_a=a;
m_b=b;
}
//重载后置++运算符
person operator++(int)
{
person temp=*this;
m_a++;
m_b++;
return temp;
}
};
//全局函数重载左移运算符
ostream& operator<<(ostream &out,person p) //???不能用引用&p
{
out<<"m_a="<<p.m_a<<" m_b="<<p.m_b;
return out;
}
void test()
{
person pp(0,0);
cout<<pp<<endl;
cout<<pp++<<endl;
}
int main()
{
test();
system ("pause");
return 0;
}
如果在全局函数重载那儿加了引用,即:
friend ostream& operator<<(ostream &cout,person &p);
和
ostream& operator<<(ostream &out,person &p)
会报错,如下:
{
"owner": "C/C++",
"severity": 8,
"message": "没有与这些操作数匹配的 \"<<\" 运算符 -- 操作数类型为: std::ostream << person",
"startLineNumber": 36,
"startColumn": 9,
"endLineNumber": 36,
"endColumn": 9
}
但是不加引用可以正常运行。为什么????
https://tieba.baidu.com/p/6265998042?red_tag=3512005220
我也遇到了,可能是前置和后置返回的值的类型不一样吧,一个是指针,一个是值。至于为啥值的时候不能用引用就不太清楚了😂