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I have a value that I know is less than 16 (no more than 4 bits) in an int. I want to bitwise-OR it into a char. Can I do this:

c |= i;

or will that depend on endianness? If it is a problem, will this:

c |= (char)i;

solve it?

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Suggestion: choose a language and stick with it. Do not try to write multi-language source files: it is very hard work :) –  pmg May 8 '13 at 13:31
    
@pmg In this particular case, both C and C++ are relevant, and have the same answer. –  James Kanze May 8 '13 at 13:39
    
@pmg I am writing c++, but since this area is the same for c, I included it. –  baruch May 8 '13 at 13:42
    
Rule of thumb: in 99% of the cases where you find yourself doing bitwise arithmetic on signed integer types, it means that you are confused and don't know what you are doing. Even more so if you do bitwise arithmetic on char, because char could be either signed or unsigned, it is impl. defined behavior. –  Lundin May 8 '13 at 13:49
    
@Lundin Since I am only using the bit values, never the integer value of the char (and no left-shifts), it doesn't make a difference if it is signed or not. –  baruch May 8 '13 at 14:30

5 Answers 5

up vote 8 down vote accepted

Endianness never matters when doing arithmetic, it only matters when dealing with values (larger than 1 char) in some other way, i.e. when using char-pointers to traverse buffers holding larger values, for instance.

In your case, there is no need to cast, automatic arithmetic promotion will make sure it's all fine. The code:

char c = 0;
int  i =3;

c |= i;

is equivalent to

c = c | i;

The expression will be computed as int, and then converted back down for storage.

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thanks @unwind. I was struggling with how to explain this, unicorns and all. –  Elazar May 8 '13 at 13:29
    
I think in his question, c was the char, and i the int. –  James Kanze May 8 '13 at 13:38
    
And endianness really never matters, for anything. –  James Kanze May 8 '13 at 13:40
    
Now explain what happens when one of the integers has a negative value (taking into account "sign + magnitude" vs. "2's complement" vs. whatever else the implementation may have felt like defining). :-) –  Brendan May 8 '13 at 13:51
    
@JamesKanze Thanks, I had swapped c and i. Not sure about your disregard for endianness, though. I've seen it matter. :) –  unwind May 8 '13 at 14:04

If you want convert int to char, you only need write char c = i; or char c = (char) i. This forms are similar. If you want do that with use OR, you have to be sure that the target character has all bits with a value zero, then both of your examples are correct. Ofcoure, if you need bitwise OR your codes are corect too when char has nonzero bits. But pay attention to size. If you try to conver sixteen byte to one, bits that do not fit will be lost.

If you write in C++, don't forget about casts.

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I prefer to do something like this, which prevents against sign-extension if the destination is wider (has more bits) than the source:

c = c | (0x0f & i);

It also serves as a reminder of which bits in the source are the target bits to extract.

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1  
Seeing the OP wants four bits, shouldn't that be c = c | (0x0f & i);? –  pmg May 8 '13 at 13:28
    
Yes, my bad, thanks :-) –  Dave May 8 '13 at 13:34
1  
The best practice is to never ever do bitwise arithmetic on signed numbers. In this specific case, it isn't an issue. But since you mention sign-extension, the safest possible way to write this expression is c = c | (0x0fu & i);, because it will force the implicit type promotion rules of C to ensure that the result is unsigned (and then truncated into a char). –  Lundin May 8 '13 at 13:44
1  
The u will convert the literal 0x0f to type unsigned int. This will in turn convert the result of the operation 0x0fu & i to unsigned int. Which will in turn convert the result of c | (0x0fu & i) to unsigned int. If you don't know how implicit type promotion works in C, then never ever consider bitwise arithmetic on signed integer types. You are going to produce floods of very subtle bugs. –  Lundin May 8 '13 at 13:52
1  
@Lundin The best practice is not to do bitwise operations on signed types. And c and i should be unsigned char and unsigned int. But since he explicitly said that he's only using the four low order bits, it doesn't matter. –  James Kanze May 8 '13 at 14:13

You are better off using c |= (char)(i);

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2  
Why? It looks like just extra noise to me. (He might want to precede the c |= i; with an assert: assert( (i & ~0x0F) == 0 );, for example. But that's a different issue. –  James Kanze May 8 '13 at 13:36
    
I tried it on both big and little endian machines and the result is the same. So, it does not really matter. I prefer to do it with the typecast to remind myself that I knew that I am mixing the two types. –  unxnut May 8 '13 at 13:42
    
This cast only shows that you don't know how implicit type promotion works in C. The cast is superfluous clutter and does nothing. Print sizeof(c | (char)some_int), it will be the size of an int. If you want a typecast to remind yourself of something, you should have written c = (char)(c | i); which would at least have been meaningful. –  Lundin May 8 '13 at 14:05

it has nothing to do with endianness. c |= i; will simply work.

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8  
If you explain why, I'll upvote. –  Daniel Fischer May 8 '13 at 13:15
    
@DanielFischer Pretty sure it's either magic, unicorns or both! –  JustSid May 8 '13 at 13:21
    
The why is because that is the way computers work. The only real question here that I can see is why anyone might think that it wouldn't. –  James Kanze May 8 '13 at 13:34
    
@JamesKanze The reason I thought it might not is if the char gets ORed with the LSB. But now that I am writing this, I am not sure why I would have ever thought that. –  baruch May 8 '13 at 13:45
1  
Effectively, the char will be or'ed with the LSB. Regardless of where that byte is in the memory layout of the int. –  James Kanze May 8 '13 at 14:11

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