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I have the following data

uint8_t d1=0x01; 
uint8_t d2=0x02; 

I want to combine them as uint16_t as

uint16_t wd = 0x0201;

How can I do it?

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3 Answers 3

up vote 11 down vote accepted

You can use bitwise operators:

uint16_t wd = ((uint16_t)d2 << 8) | d1;

Because:

 (0x0002 << 8) | 0x01 = 0x0200 | 0x0001 = 0x0201
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2  
Yes, it is. d2 needs to be cast first (which the edited post takes care of.) –  Jonathan Grynspan Mar 6 '13 at 14:26
    
@LuchianGrigore: Oh, yes, I've forgotten it. Thanks. –  md5 Mar 6 '13 at 14:26
2  
Cast is not needed. –  R.. Mar 6 '13 at 14:29
    
@LuchianGrigore & JonathanGrynspan Not neccessarily, since d2 is first promoted to int (which is at least 16 bit). But Ok, it could still be UB if int was really just 16 bit on his platform and (int)d2 << 8 would overflow the non-negative int range. –  Christian Rau Mar 6 '13 at 14:30
    
I don't see how the cast would improve anything. Suppose that uint16_t has lower conversion rank than int, then you have solved nothing with the cast, the left operand would still be implicitly promoted to (signed) int. But since there is no way that could yield a negative value, the behavior of this code and the original one is always well-defined. –  Lundin Mar 6 '13 at 14:31

The simplest way is:

256U*d2+d1
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1  
Aw. Now we really have a use case for bitwise operations and you still stick to boring arithmetics. ;) –  Christian Rau Mar 6 '13 at 14:33
    
<<8 and *256 are identical operations except that the former has undefined behavior in more cases and thus is usually undesirable. There's hardly ever a reason to use the << or >> operators unless the right-hand operand is variable (in which case you have a nice exponentiation operator). –  R.. Mar 6 '13 at 14:39
1  
Yeah, that comment was of rather humorous nature. –  Christian Rau Mar 6 '13 at 14:40

This is quite simple. You need no casts, you need no temporary variables, you need no black magic.

uint8_t d1=0x01; 
uint8_t d2=0x02; 
uint16_t wd = (d2 << 8) | d1;

This is always well-defined behavior since d2 is always a positive value and never overflows, as long as d2 <= INT8_MAX.

(INT8_MAX is found in stdint.h).

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... except when it's not 0x7F (see 5.2.4.2) –  undefined behaviour Mar 6 '13 at 14:53
    
@modifiablelvalue Emphasis on in practice. All sane implementations use wchar_t for larger integers if that is your concern. If your concern is one's complement or sign & magnitude CPUs, then please let me know where to buy them because I want one too! –  Lundin Mar 6 '13 at 14:58
1  
INT8_MAX is 127. It's true that d2<<8 can be proven not to overflow when d2<=127, but the reason is that INT_MAX is required to be at least 32767 but not required to be any larger. –  R.. Mar 6 '13 at 15:17
1  
The down-side of stackoverflow's model is that most of this discussion is now rendered rubbish due to an edit of the original post. Providing INT_MAX == 32767, INT8_MAX is the ceiling value by coincidence. When INT_MAX >= 32768, INT8_MAX is meaningless. –  undefined behaviour Mar 6 '13 at 15:18
1  
@Lundin The danger isn't necessarily shifting into the sign bits; Using a value that can't be represented as an int, in an expression that has int type seems like a more appropriate description for this undefined behaviour. –  undefined behaviour Mar 6 '13 at 15:31

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