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I understand from here that the name of an array is the address of the first element in the array, so this makes sense to me:

int nbrs[] = {1,2};
cout << nbrs << endl;   // Outputs: 0x28ac60

However, why is the entire C-string returned here and not the address of ltrs?

char ltrs[] = "foo";
cout << ltrs << endl;   // Outputs: foo
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Because it's been overloaded to print the string for convenience. –  Mysticial Aug 3 '12 at 22:18
    
possible duplicate of C++: Making strings by pointers –  pb2q Aug 3 '12 at 22:20
    
A name of an array is not the address of the first item. They're very different. However, an array will sometimes pretend to be a pointer to the first item. –  Mooing Duck Aug 3 '12 at 22:22
    
Also the entire C-string is being displayed, not "returned" –  Mooing Duck Aug 3 '12 at 22:24
    
You're writing C++ rather than C. I would recommend you find a good C++ tutorial instead. –  Roddy Aug 3 '12 at 22:24

3 Answers 3

up vote 8 down vote accepted

Because iostreams have an overload for char * that prints out what the pointer refers to, up to the first byte that contains a \0.

If you want to print out the address, cast to void * first.

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Fantastic! Thanks. –  ustasb Aug 3 '12 at 22:35

cout, and generally, C++ streams, can handle C strings in a special way. cout operators <<, >> are overloaded to handle a number of different things, and this is one of them.

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cout has operator<<() overloaded for char* arrays so that it outputs every element of the array until it reaches a null character rather than outputting the address of the pointer

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