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How to convert lower case ASCII char into upper case using a bitmask (no -32 allowed)?

I'm not asking for solving my homework, only some hints.

Thanks

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10 Answers 10

up vote 10 down vote accepted

As you state "(no -32 allowed)", I guess you know that the difference between lower case characters and upper case characters is 32. Now convert 32 to its binary representation, there's only one bit set. After that, work out a way to use a bit mask to switch the bit.

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1  
+1 for providing guidance without giving away the farm. –  alesplin Nov 2 '10 at 16:33
    
Indeed, though of course people did give away the direct answer below ;o. I believe it should be noted, for any readers, that the OP did indicate ASCII characters. Thus, this method, or any presented on this page, would not be necessarily always be valid for non-English Unicode (16-bit/wide-char) characters. I just wanted to make this clarification. It would work for English, but dunno about other languages. Therefore, be careful, and remember not all humans speak English and our Universal Translator has yet to be invented ;p. The CRT toupper and tolower functions should be used for chars. –  9090 Nov 6 '11 at 7:57

This example assumes that the string is in ASCII, and using the English alphabet.

This is C99 C code, you should use the proper compiler flag to set this when compiling. I specifically tried not to use any libs in this example, standard or not because I'm guessing you're still in the process of learning the basics of C programming.

#define UPPER_CASE_SWITCH 0x5f
void makeUpper(unsigned char *string, int length)
{
    for(char c; length != 0 && (c=*string) != 0; --length) 
        *string++ = (((c >= 'a' && c <= 'z')) ? (c & UPPER_CASE_SWITCH) : c);
}

It takes advantage of the fact that the ONLY difference between an upper and a lower case character in the ASCII table, is a single bit. Specifically the 6th bit (from the right.) All we have to do is create a "mask" that contains all 1's except for the 6th bit (from the right) and then use the binary AND instruction (&) to apply this mask to our character. And then of course put this into our string.

Here is a python example.

>>> bin(ord("a")) ## Gets the binary digit for the letter "a"
'0b1100001'
>>> bin(ord("A")) ## Gets the binary digit for the letter "A"
'0b1000001'
>>> hex(0b1011111) ## Gets the hexadecimal mask we are using in the C source
'0x5f'

In my opinion, this is the best way to make an ASCII string (or a single ASCII character) upper case in c. Unless, of course you want something that will return a new string, i.e you want to create an upper-case version of the "old" string but still be able to keep the original version somewhere. This shouldn't be too hard to do, if you understand my first example. You just have to allocate a new array to put the upper-case string in, and return a pointer to this array (unsigned char*).

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As you specify this, your homework is not well defined. The C standard knows nothing about a particular encoding of the source or execution character set, in particular it doesn't assume anything that comes close to ASCII or so.

So wnoise was right, the only standard way to deal with these things are the predefined functions and macros that are provided for such an effect.

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From the OP, "How to convert lower case ASCII char into upper case". From 'man ascii' - "ASCII is the American Standard Code for Information Interchange. It is a 7-bit code." The OP doesn't want a standard way, the OP wants to convert ASCII characters from lower case to upper case using a bitmask. In many cases this is an easy way to ease people into bitmasks as they can then see the exact effect that they have. –  KevinDTimm Nov 3 '10 at 12:06
    
Agreed, given that he defined ASCII in the topic, he is excused ;) –  9090 Nov 6 '11 at 8:23

The operation of subtracting a 32 from ASCII code of a small Latin letter flips the 5th bit from 1 to 0.

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no it doesn't, it only affects one bit : 32 = 0x20 = 00100000 –  KevinDTimm Nov 2 '10 at 15:41
    
You're right, within the set of small Latin letters the 5th bit is always one. sorry, got carried away by international language experience. It's even more straightforward then. –  Seva Alekseyev Nov 2 '10 at 15:50

Think about the differential between lower and upper case (0x20) and then apply the appropriate mask to your value

XOR to get lower from upper or upper from lower

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2  
Or just use XOR for both of them ;) –  schnaader Nov 2 '10 at 15:41
1  
.... corrected .... –  KevinDTimm Nov 2 '10 at 15:43
    
Once again, if you're going to run around willy-nilly down voting answers, please explain why. –  KevinDTimm Aug 20 '12 at 12:54

For actual code, you should be library functions, such as toupper() or towupper(), or something able to handle the complexity of Unicode.

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+1 to compensate the one who is running around wildly here and votes down correct answers. –  Jens Gustedt Nov 2 '10 at 16:38
    
@9090 So many practical problems are limited to ASCII. Waving your cane and saying something akin to "you damn kids will put someone's eye out with that ASCII" isn't really useful. –  Craig Barnes May 5 at 23:35

try and with 0xDF (hex) or 011011111 binary

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1  
too many bits.... –  KevinDTimm Nov 2 '10 at 15:44

I'm not sure about how to do this in C. But basicaly you just have to get the ascii charcode of the lower case charcater and then transform it to the upper case charcode by executing a XOR with 0x01 << 5

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Just translate +-32 into a bit operation. 32 can be written as 2^x.

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Compare the hexadecimal values of lower case ASCII characters to upper case ASCII characters and the solution should become clear. It may also be helpful to compare the binary values if the solution is not evident right away.

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