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char *ps;
ps = &anotherChar;
cout << ps;

Why this displays the value of anotherChar not just the address?.

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7 Answers 7

The operator << assumes you want to print the string not the address of the string.
Since ps points to the string, if you want to print the address of ps use "<< &ps"

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Why it 'assumes'? –  Loai Najati Jun 22 '09 at 14:58
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Because 9/10 when you want to print a string you want the contents of the string - not the address in memory. –  Martin Beckett Jun 22 '09 at 15:17
    
Thanks. I really appreciate that. –  Loai Najati Jun 23 '09 at 17:51
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There is an operator<< overload for char * which interprets it as a string to be output. If you want an address, you could to cast to void*.

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If I remember correctly, casting to void* will print the address in hexadecimal by default. –  OregonGhost Jun 22 '09 at 14:45
    
Why exactly there's an operator overloading for this type? –  Loai Najati Jun 22 '09 at 15:06
    
Generally, when you have a char*, it is a C style string and most functions will treat it as such. In this case, it allows for the stream class to output C strings as text. –  crashmstr Jun 22 '09 at 15:39
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Because char*'s are c-style strings. It does what it thinks you want, which is print out the c-string pointed to at ps.

You could print the address with:

cout << static_cast<void*>(ps) << endl;
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The reason why is that a char* in C/C++ is a dual purposed type. It can be both a pointer to a single character or a C style string. The cout function chooses to treat this as a C style string and hence will print the values instead of the address.

This is also a potential problem for your application. C style strings end with a null terminator value. Hence this has the potential to read illegal memory since it's not properly initialized.

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How can this be a C style string?!. The C style string is the array of char. –  Loai Najati Jun 23 '09 at 17:50
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The << operator has numerous overloads for working with streams.

One of these prints a zero terminated string for you. The type of the variable used to point to a zero terminated string is a char*. This is what you've used. If you wrote:

char* ps = "hello";
cout << ps;

This overload would print "hello". It's probably just luck that there is a zero in memory after anotherChar so that the overload of the << stops printing characters after printing anotherChar. There is a good chance that if this isn't a zero you'd print out random characters from memory until a zero was encountered.

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If you want the pointer value:

cout << (void *) ps;
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C++ does not have a built in type for strings. It uses a null terminated (array that ends in '\0') char * (plus or minus const qualifiers) or char [] as a convention to represent strings. All the Standard C libraries use this convention.

So, the STL ostreams also use this convention.

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