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I have an array of chars like this one:

char arr[3]="hi";
cout << arr;// this will print out hi

So is the operator<< has an overloaded version that takes an ostream object and char *. so cout<<arr; first arr will decays to a chat * . and then operator<<() will print out what the char pointer is pointing to until it find a null-character ?

The same question for cin>>arr; how does it work with operator>> that takes an array as the second operand.

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Yes, there are lots of overloaded versions. cplusplus.com/reference/iostream/ostream/operator<< Or was that not the question? –  Mr Lister Apr 23 '12 at 18:02
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Also don't use cplusplus.com, but cppreference.com. –  Griwes Apr 23 '12 at 18:04
    
@Griwes How come? –  Mr Lister Apr 23 '12 at 18:05
    
@MrLister, simply: cplusplus.com is really outdated and inaccurate, while cppreference.com covers everything (maybe without examples everywhere, but they will come) that is mentioned in latest C++ standard. –  Griwes Apr 23 '12 at 18:14

3 Answers 3

up vote 1 down vote accepted

Your ostream and istream do have operator<< and operator>> overloaded to take a char*, and arrays decay into pointers to the first element. So, yes it does what you say it does.

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Exactly in the same way as cout works.

The array arr decays into pointer type, and there exists an overloaded version of istream as well which takes char* as argument. So arr gets passed to the operator>> as char* after decaying.

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Please see here for details on cout: Standard output stream. Whilst in this page, please click and see the link that says "ostream::operator<<" Likewise see here for details on cin: Standard input stream. Whilst here, please click and see the link that says "operator (>>)"

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