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I'm trying to get the most significant bit of an unsigned 8-bit type in C.

This is what I'm trying to do right now:

uint8_t *var = ...;
...
(*var >> 6) & 1

Is this right? If it's not, what would be?

  • 1
    highest bit - the bits are most significant and least significant, see wiki. All bits have the same "height". – Kamil Cuk Apr 3 at 11:25
  • @JL2210: You want the MSB or most significant set bit – P.W Apr 3 at 11:31
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    No, I want the most significant bit, whether it's a 1 or a 0. Getting the most significant set bit would be pointless. – JL2210 Apr 3 at 11:32
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    A byte has 8 bits. The MSB is bit 7. Thus if you right shift it 7 times, it will end up at bit 0. – Lundin Apr 3 at 11:34
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    Why did you write 6 (in *var >>6) in first place?? – Jabberwocky Apr 3 at 12:14
6

To get the most significant bit from a memory pointed to by uint8_t pointer, you need to shift by 7 bits.

(*var >> 7) & 1
6

The most standard/correct way of masking bits is to use a readable bit mask of the form 1u << bit. Any C programmer spotting 1u << n in code will know that it is a bit mask - so it is self-documenting code.

So if you want bit number 7, you would write

*var & (1u << 7)

The u suffix is important for rugged code, since you want to avoid accidental implicit promotions to signed types.

2

Another option is to simply apply a bit mask and check the resulting value:

*var & 0x80u // 1000 0000

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