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I haven't tested on a big endian processor but would this always give me least significant byte?

int i = 12345678;
unsigned char c = static_cast<unsigned char>(i);
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(meta) If you use static_cast you shouldn't mark the question as C. I won't retag it because I think it's better you do it (so you learn tag-etiquette :-) ) –  xanatos Feb 20 '11 at 10:38

2 Answers 2

up vote 3 down vote accepted

Yes, this will always give you the least-significant byte. The C++ spec (§4.7/2) guarantees that narrowing conversions always discard the most-significant bytes by giving back the smallest value congruent to the original integer, modulo 2n, where n is the number of bits in the target type.

That said, there's no guarantee that an unsigned char is a single byte. All that's guaranteed is that sizeof(char) == 1. However, if you treat a byte as the smallest memory unit capable of holding a character, then this should work just fine.

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@templatetypedef: unsigned char is also single byte. See $5.3.3/1 –  Nawaz Feb 20 '11 at 10:36
    
@Nawaz but the standard doesn't guarantee it. –  user32344 Feb 20 '11 at 10:37
    
@user32344: I also posted the reference! –  Nawaz Feb 20 '11 at 10:38
    
See this post : stackoverflow.com/questions/4562249/… –  Nawaz Feb 20 '11 at 10:38
    
@Nawaz- Hmmm... this is interesting because the C++ spec defines a byte as the smallest addressable unit in the C++ memory model, but it's possible for someone to make a compliant implementation of C++ in which a C++ "byte" would be two bytes on the native system, as long as everything was consistent. This would be a pathologically evil edge case designed specifically to prove a point, though. –  templatetypedef Feb 20 '11 at 10:41

Wouldn't the following also work?

int i = 12345678;
unsigned char c = (i % 256);

or

int i = 12345678;
unsigned char c = (i & 255);
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