I working with serial frames. I'm receiving a 16-bit value as two separate 8-bit values. How can I merge buffer[0] with buffer[1]? I don't want 0b01+0b10 = 12 (base 10). I want it to equal 258.
How can I accomplish this?
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10b01+ 0b10 = 0b11 = 3 (base 10). What are you asking?– Carl NorumJun 25, 2012 at 17:09
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maybe he meant 1 + 2 ;)– Kevin GlassonApr 7, 2019 at 2:53
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1 Answer
uint16_t value = (highByte << 8) | lowByte ;
answered Jun 25, 2012 at 17:10
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This answer is correct, assuming that it is known that
byte1is the high byte, andbyte2is the low byte– Dan FJun 25, 2012 at 17:15 -
@carl I have changed the variable names to reflect the high and low bytes. Jun 25, 2012 at 17:16
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@TJD: I see no reason why not, the result will not fit a uint8_t of course. Just try it out. Jun 25, 2012 at 17:21
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@TJD - that's not true. Just as with many other C operators, the integer promotions are performed before the operation takes place. Jun 25, 2012 at 17:25