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I have a C code in which I am using standard library function isalpha() in ctype.h, This is on Visual Studio 2010-Windows. In below code, if char c is '£', the isalpha call returns an assertion as shown in the snapshot below:

enter image description here

char c='£';

if(isalpha(c))
{
    printf ("character %c is alphabetic\n",c);

}
else
{
    printf ("character %c is NOT alphabetic\n",c);
}

I can see that this might be because 8 bit ASCII does not have this character.

So how do I handle such Non-ASCII characters outside of ASCII table?

What I want to do is if any non-alphabetic character is found(even if it includes such character not in 8-bit ASCII table) i want to be able to neglect it.

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1  
Note that '£' is not an ASCII character. You're mixing contexts: the result can be surprising. –  pmg Jul 14 '11 at 13:29

3 Answers 3

up vote 3 down vote accepted

You may want to cast the value sent to isalpha (and the other functions declared in <ctype.h>) to unsigned char

isalpha((unsigned char)value)

It's one of the (not so) few occasions where a cast is appropriate in C.


Edited to add an explanation.

According to the standard, emphasis is mine

7.4

1 The header <ctype.h> declares several functions useful for classifying and mapping characters. In all cases the argument is an int, the value of which shall be representable as an unsigned char or shall equal the value of the macro EOF. If the argument has any other value, the behavior is undefined.

The cast to unsigned char ensures calling isalpha() does not invoke Undefined Behaviour.

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thanks. char c; c='£'; isalpha((unsigned char)(c)); does work. No assertion and isalpha now returns '£' as NOT alphabetic. –  goldenmean Jul 14 '11 at 13:31
    
right answer, IMHO inadequate explanation... –  Alnitak Jul 14 '11 at 13:35
    
@Alnitak: hehehe I didn't really explain anything ... post edited –  pmg Jul 14 '11 at 14:49

You must pass an int to isalpha(), not a char. Note the standard prototype for this function:

int isalpha(int c);

Passing an 8-bit signed character will cause the value to be converted into a negative integer, resulting in an illegal negative offset into the internal arrays typically used by isxxxx().

However you must ensure that your char is treated as unsigned when casting - you can't simply cast it directly to an int, because if it's an 8-bit character the resulting int would still be negative.

The typical way to ensure this works is to cast it to an unsigned char, and then rely on implicit type conversion to convert that into an int.

e.g.

char c = '£';
int a = isalpha((unsigned char) c);
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I don't think so. Even when I tried - int c; c='£'; and passed it to isalpha(c), it asserts. –  goldenmean Jul 14 '11 at 13:24
1  
@goldenmean if your default chars are signed that'll still pass a negative integer. What happens if you try int c = (unsigned char)'£' ? –  Alnitak Jul 14 '11 at 13:28
    
As pmg answered above, char c; c='£'; isalpha((unsigned char)(c)); does work. No assertion and isalpha now returns '£' as NOT alphabetic. –  goldenmean Jul 14 '11 at 13:30
    
@goldenmean yes, that's exactly what I was saying. –  Alnitak Jul 14 '11 at 13:34
    
Thank you. +1 for explanation –  goldenmean Jul 14 '11 at 13:42

You may be compiling using wchar (UNICODE) as character type, in that case the isalpha method to use is iswalpha

http://msdn.microsoft.com/en-us/library/xt82b8z8.aspx

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K Thanks. Now used if(iswalpha(c)) ,it does not assert but now it passes '£' as a alphabetic character, when i want only letters([a..z]) to be deduced as alphabetic chars. –  goldenmean Jul 14 '11 at 13:21
    
@Anders - now, unless goldenmean changes his char to wchar_t, he is mixing char and Unicode, which isn't right surely. –  AAT Jul 14 '11 at 13:44

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