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// The original code is from link: http://hoeven.blogbus.com/logs/37324287.html
#include<iostream>
#include<vector>
#include <stdlib.h>

using namespace std;

class test{
public:
     int v;
   /*构造函数*/
     test():v(0){}
     test(const int &a):v(a){}
     test(const test &t1):v(t1.v){}

   /*以下重载小于号 < */
     //比较两个对象的大小
     bool operator<(const test &t1) const{
         return (v < t1.v);
     }
     //比较对象和int的大小
     bool operator<(const int &t1) const{
         return (v < t1);
     }
     //友元函数,比较int和对象的大小
     friend inline bool operator<(const int &a, const test & t1){
         return (a < t1.v);
     }

   /*以下重载赋值号 = */
     //对象间赋值
     test & operator=(const test &t1){
         v = t1.v;
         return *this;
     }
     //int赋值给对象
     test & operator=(const int &t1){
         v = t1;
         return *this;
     }

   /*以下重载加号 + */
     //对象加上 int
     test operator+(const int & a){
         test t1;
         t1.v = v + a;
         return t1;
     }
     //对象加对象
     test operator+(test &t1){
         test t2;
         t2.v = v + t1.v;
         return t2;
     }

   /*以下重载加等号 += */  
     //对象加上对象
     test &operator+=(const test &t1){
         v += t1.v;
         return *this;
     }  
     //对象加上int
     test &operator+=(const int &a){
         v += a;
         return *this;
     }

   /*以下重载双等号 == */  
     //对象==对象
     bool operator==(const test &t1)const{
         return (v == t1.v);
     }  
     //对象==int
     bool operator==(const int &t1)const{
         return (v == t1);
     }  

   /*以下重载 输入>> 输出<< */
     /*友元函数,输出对象*/
     friend inline ostream & operator << (ostream & os, test &t1){
         cout << "class t(" << t1.v << ")" << endl;
         return os;
     }
     /*友元函数,输入对象*/
     friend inline istream & operator >> (istream & is, test &t1){
         cin >> t1.v;
         return is;
     }
};

int main(){
     test t0, t1(3);  // t0 has no initial value, so use default value 0
     test t2(t1);
     cout << t0 << t1 << t2;
     cin >> t1;
     t2 = t1;
     t2 += t1;
     t1 += 10;
     cout << t2;
     if(t1 < t2) cout << "t1 < t2";
     else if(t1 == t2) cout << "t1 = t2";
     else /* t1 > t2*/ cout << "t1 > t2";
     cout <<endl;
     system("echo Tom");
     return 0;
}

/*
 $ ./a.out 
 class t(0)
 class t(3)
 class t(3)
 45
 class t(90)
 t1 < t2
 Tom
 */

The complete code is above. But I don't understand why "ostream & os" (see below) must be there in the bracket? If I remove "ostream & os", a lot of errors were given.

 friend inline ostream & operator << (ostream & os, test &t1){
     cout << "class t(" << t1.v << ")" << endl;
     return os;
 }
share|improve this question
    
<< is a binary operator. You have the ostream on the left side and the thing you want to output on the right side. Since you define this within your class and the first parameter of << is not an instance of your class, this has to be a free function, hence the friend keyword and two parameters. –  sellibitze Nov 15 '12 at 9:43
    
I found that you are quite right. The friend key word cannot be removed at all. –  Tom Xue Nov 15 '12 at 14:31
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5 Answers

up vote 3 down vote accepted

You have 2 ways of overloading operator<< :

  1. unary (this->operator<<(other_object)),
  2. binary (operator<<(ostream& os, other_object).

Only one of them is possible (second), first is impossible because to implement it you have to overload function of ostream class operator<< which cant be done.
When you write statement like cout << "some text"; binary operator is invoked, which gets as arguments: object of class ostream and object of another class

share|improve this answer
    
Could you be a little more careful with formatting of your answers? (cleaning up) –  Jan Hudec Nov 15 '12 at 9:45
    
It would have been almost right, but stating that the first option is illegal is just so totally wrong that I am downvoting this. –  Jan Hudec Nov 15 '12 at 9:48
    
Ok, could you, please, give me some explanation. I thought that modifying functionality provided in std library is illegal because it can make you code unportable, as written code should follow some standarts to be easily readable and modifiable. So that is actually wrong, is overloading unary operator for ostream legal? –  spin_eight Nov 15 '12 at 10:04
    
The point here is that it's not question of legality, but question of possibility. The class is already written, you can't overload anything in it that's not virtual and you can't add members to it. –  Jan Hudec Nov 15 '12 at 10:42
1  
The thing that's "illegal" is adding new definitions into std namespace except overloads of existing definitions for custom types and you actually may have to take advantage of that exception here, because often the overload has to be placed in std to be properly found by argument-dependent lookup (because pointers don't associate with namespace of pointee type, unfortunately) –  Jan Hudec Nov 15 '12 at 10:54
show 3 more comments

Because the code you paste is wrong.

The << operator should write to its param. i.e. your function should be

inline ostream & operator << (ostream &os, test &t1) {
    os << "class t(" << t1.v << ")" << endl;
    return os;
}

This gives you the ability to write to any ostream, and not only cout. In the previous code, if you wrote ofile << t1; (considering ofile is a filestream) this would not have write to the file, but still on standard output.

share|improve this answer
    
Thank you! Good point I learnt. –  Tom Xue Nov 15 '12 at 14:16
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The ostream & os is the left hand side of the operator <<. i.e. cout << myObject;. In this case, cout is the ostream. However, in your overload, you are ignoring the os variable and using cout unconditionally. You should replace cout with os in your operator << overload.

share|improve this answer
    
No, the code is simply broken. It ignores the ostream argument and writes to cout unconditionally. –  pmr Nov 15 '12 at 9:40
2  
@pmr: The code in question is simply broken, indeed, but as written this answer is consistent. –  Jan Hudec Nov 15 '12 at 9:43
    
@Mark Ingram: This should be called "operator overload" instead of calling it override, am I right? –  Tom Xue Nov 15 '12 at 14:03
    
Thanks Tom, I've updated accordingly. –  Mark Ingram Nov 19 '12 at 11:51
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Only if you pass the ostream variable to the method will the method know where to output. You could alternatively open a file stream and pass it to the method. Then the output would be written to the file instead of to standard output.

share|improve this answer
    
I usually don't comment on how an answer is written, but yours is impossible for me to understand. I think you want to use the word "if", but I'm not sure where. It might help if you broke your answer into multiple sentences. –  Alan Dec 13 '12 at 20:51
    
Sorry for my poor English,but why don't you just put the word in it?You can edit anyone's answer which is not clear enough or have syntax error on stackoverflow. –  scobur Dec 15 '12 at 14:56
    
I wasn't sure where to put the word, since I didn't know what you meant. But now that you've added it, I understand. I made an edit that is waiting for peer review at the time that I'm posting this comment. –  Alan Dec 16 '12 at 17:35
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The ostream argument gives you further flexibility as to where to direct your output. It also allows chaining so that multiple items can be output in the same statement:

test t1;
test t2(5);
test t3(-4);

// Write "0 5 -4\n" to standard output
cout << t1 << " " << t2 << " " << t3 << endl;

// Write "0 5 -4\n" to the file my_file.txt
ofstream ofs("my_file.txt");
ofs << t1 << " " << t2 << " " << t3 << endl;

// Write "0 5 -4\n" to oss, which is then written to standard output
ostringstream oss;
oss << t1 << " " << t2 << " " << t3 << endl;
cout << oss.str() << endl;
share|improve this answer
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