Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have a question about cin and cout order in C++, for example:

int a,b;
std::string c;
std::cin >> a >> b >> c >> c >> a;
std::cout << a << " " << b << " " << c << " " << a;

if the input is "5 10 hello world 15 20", what is the output, I can see the result, but can anyone explain me how it works? cin assign 5 variable, but input is 6 values, and what is the order of cin and cout?

share|improve this question

closed as not a real question by Oliver Charlesworth, Bo Persson, yoda-ley-EEE-oooo, John Saunders, Graviton May 10 '11 at 1:08

It's difficult to tell what is being asked here. This question is ambiguous, vague, incomplete, overly broad, or rhetorical and cannot be reasonably answered in its current form. For help clarifying this question so that it can be reopened, visit the help center. If this question can be reworded to fit the rules in the help center, please edit the question.

8  
Did you try running it? –  Oliver Charlesworth May 5 '11 at 20:49
1  
I do not understand how it works, it is not the matter of running, even I can see the result, I still need to confirm how it working –  cong May 5 '11 at 20:52
2  
Perhaps you should amend your question to include the output you can see, and ask why it's not whatever it is you're expecting –  forsvarir May 5 '11 at 20:53

3 Answers 3

Output would be:

15 10 world 15

std::cin reads data into the first variable from the left first, and after that it reads data into the second variable and so on.

std::cin >> a >> b >> c >> c >> a;

is equivalent to the following:

std::cin >> a; //reads 5
std::cin >> b; //reads 10
std::cin >> c; //reads hello
std::cin >> c; //reads world
std::cin >> a; //reads 15

See after reading 15, it doesn't read the 20, because there is no more std::cin >> variable.

share|improve this answer
    
input gives 6 values, but cin just assign 5 variables, what about the last value? –  cong May 5 '11 at 20:56
    
@cong: the last integer 20 isn't read. –  Nawaz May 5 '11 at 20:59
    
@cong its lost because your program stop reading after the 5 value and std::cin is blocking execution until your press return. –  Lynch May 5 '11 at 21:04
    
@Lynch: It's not lost. It's still there in the input stream, and the next call to cin>> will read it. –  Benjamin Lindley May 5 '11 at 23:23

C++ (ab)uses the shift operators for input and output. They are left-associative, which means the left-most operator gets executed with its two operands, and the result of that form the left operand for the next operator. So something like

std::cin >> a >> b >> c >> c >> a;

essentially is interpreted as

((((std::cin >> a) >> b) >> c) >> c) >> a;

Let's look at this in detail. The expression std::cin >> a invokes

std::istream& operator>>(std::istream& is, int& num);

That operator will read from is into num and return (a reference to) is. That is, the very same is object (std::cin in our case) is then used to read into b: std::cin >> b. This invokes the same operator, which reads into b and then again return it's left operand.
This, in turn, is used for reading into c. That is a string, so the operator invoked will be a bit different:

std::istream& operator>>(std::istream& is, std::string& str);

As you see, what differs from the previous overload is only the right operand (and the implementation, of course.) This, too, returns its left operand. (In fact, so do all input operator overloads, and so should ydo your own ones, too.)

Basically, your code is eqvivalent to this:

std::istream& tmp1 = std::cin >> a ;
std::istream& tmp2 = tmp1 >> b;
std::istream& tmp3 = tmp2 >> c;
std::istream& tmp4 = tmp3 >> c >> a;

For output, the situation is very similar, except that the output operators' signatures are slightl different:

std::ostream& operator<<(std::ostream& os, int num);
std::ostream& operator<<(std::ostream& os, const std::string& num);
share|improve this answer

Because you are writing more than once to a variable between two sequence points, the output is undefined. The << operator is left-to right associative

Edit: Nonsense. Overloaded operators act like functions and so introduce sequence points. Tho output is like Nawaz wrote.

share|improve this answer

Not the answer you're looking for? Browse other questions tagged or ask your own question.