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Why is the return type of a C function like isalpha() int and not bool?

Why does C++ show characters when we print the pointer to a character type?

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That's two completely different questions about two different languages. Pick one for this post, and post the other as a separate question please. –  Mat Sep 25 '12 at 19:52
    
I don't understand the second question. I agree that it is unrelated to the question about int/bool, but in any case perhaps a code example? –  pb2q Sep 25 '12 at 20:20
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4 Answers

Using zero for false and non-zero for true is used extensively in C standard library functions. Many of these functions originated before any bool (or BOOL, _Bool) types were generally used.

Specifically, functions such as isalpha are specified in C89, but a boolean type not until C99.

So expect to see this all over the C standard library functions. You'll typically see bool used in C++ code.

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Hm, saying it is "commonly used" is sort of an understatement. The standard defines false to be 0 and true to be 1. –  Jens Gustedt Sep 25 '12 at 20:08
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@LokiAstari C99 7.16 specifies stdbool.h with true, false, bool, and that true expands to 1, false to 0; but none of these are specified earlier, e.g. ANSI C, which do have e.g. isalpha. –  pb2q Sep 25 '12 at 20:57
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There was no bool data type in the original C.

Check this answer for theory: Is bool a native C type?

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Because C did not originally have a built-in bool type.

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is that a question? ;) –  moooeeeep Sep 25 '12 at 19:53
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C99 does have a boolean type. –  Mat Sep 25 '12 at 19:53
    
@Mat: The old C didn't. Many functions come from there. –  Tudor Sep 25 '12 at 19:55
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Well, that comment is more informative and correct than your answer. –  Mat Sep 25 '12 at 19:55
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C didn't have a dedicated Boolean data type before the 1999 standard; prior to that, the language simply assumed that a non-zero integral expression represented True and a zero-valued integral expression represented False.

Much of the standard library (including the isalpha function) predates the introduction of the bool datatype, so those functions return int for Boolean values. Why didn't WG14 change the interface with C99? There's a lot of legacy code out there that was written under C89 and earlier, and such an interface change would break that code, which WG14 (the committee responsible for maintaining the language standard) is understandably loath to do. Heck, it took them more than 20 years to get rid of the gets library call.

As for the second question, the output << operator in C++ treats char * differently from other pointer types, and assumes that it points to the beginning of a C-style string. If you want << to display the actual pointer value, you need to cast it to void * (or do something similarly silly):

char *str = "This is a test";
...
cout << "str = " << str << "; address = " << (void *) str << endl;
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