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I have an unsigned char and I need to check bits 1 and 2 to find the status. What is the best way to determine the last 2 bits?

I am attempting to perform an OR, but my results aren't correct. Any help would be appreciated. Thanks.

Example:

10101000 = off
10101001 = on
10101010 = error
10101011 = n/a

if(data_byte_data[0] | 0xfe)
    //01
else if(data_byte_data[0] | 0xfd)
    //10;
else if(data_byte_data[0] | 0xfc)
    //11
else if(data_byte_data[0] | 0xff)
    //00
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aren't you supposed to do AND to find the last 2 bits? `if ((data[0] & 0xFE) == 0xFE) –  Itsik Feb 2 '11 at 20:55
    
@Itsik: that'd be also wrong. But if ((data[0] & 0x01) == 0x01) would be ok. –  Nick Dandoulakis Feb 2 '11 at 21:02
    
@Nick: No, that would be wrong too! It would also allow 0x03 as the two lsbs... –  Oli Charlesworth Feb 2 '11 at 21:12
    
@Oli: yes that's wrong too :P –  Nick Dandoulakis Feb 3 '11 at 5:28

4 Answers 4

up vote 8 down vote accepted

I would do something like:

v = data_byte_data[0] & 0x03;
switch (v)
{
case 0: ...
case 1: ...
case 2: ...
case 3: ...
}
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switch(data_byte_data[0] & 0x0003)
{
  case 0: 
    // 00
    break;

  case 1:
    // 01
    break;

  case 2:
     // 10
     break;

  case 3:
     // 11
     break;
}
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switch ( val & 3 ) {
    case 0: // 00
    case 1: // 01
    case 2: // 10
    case 3: // 11
}
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switch(data_byte_dat[0] & 3) {
    case 0: puts("off");    break;
    case 1: puts("on");     break;
    case 2: puts(""error"); break;
    case 3: puts("N/A");
}
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