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How can we do this bit level operation in Matlab:

int instructionWord;
a = (instructionWord >>> 21) & 0x1F;

The code right shifts the instructionWord by 21 and obtains the least 5 bits. How can this be equivalently done in Matlab?

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3 Answers 3

up vote 2 down vote accepted

Given that your input value is an integer, you could do the following:

a = mod( floor(instructionWord/2^21), 32)

Another more bit-like solution would be:

a = bitand( bitshift(instructionWord, -21), hex2dec('1F'))

The last method will throw an error if you feed it anything else than intergers.

By the way, your variable instructionWord is declared like a signed integer. But if it is an instruction word or something like that, an unsigned integer would make more sense. The expressions above expect that your input is only positive. If not, it will require a bit more code to model the >>> (logical right-shift) in matlab.

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see the bitshift page:

Code

a = intmax('uint8');
s1 = 'Initial uint8 value %5d is %08s in binary\n';
s2 = 'Shifted uint8 value %5d is %08s in binary\n';
fprintf(s1,a,dec2bin(a))
 for i = 1:8
    a = bitshift(a,1);
    fprintf(s2,a,dec2bin(a))
 end

Output

Initial uint8 value   255 is 11111111 in binary
Shifted uint8 value   254 is 11111110 in binary
Shifted uint8 value   252 is 11111100 in binary
Shifted uint8 value   248 is 11111000 in binary
Shifted uint8 value   240 is 11110000 in binary
Shifted uint8 value   224 is 11100000 in binary
Shifted uint8 value   192 is 11000000 in binary
Shifted uint8 value   128 is 10000000 in binary
Shifted uint8 value     0 is 00000000 in binary

EDIT see bitget page on how to extract a specific bit value.

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Thanks! bitshift does the left or right shift, but how about the masking operation? –  Shan Feb 6 '13 at 15:02
    
@StackUnderflow see my edit regarding bitget –  memyself Feb 6 '13 at 15:22
    
I don't actually know anything about matlab, but wouldn't using bitand make more sense? He's getting more than 1 bit after all –  harold Feb 6 '13 at 16:18
1  
I don't understand how this answer solves the question. Firstly, you are left-shifting, not right-shifting. Secondly you are not masking with 0x1F (unless you want to call bitget five times, which seems like a bit of a de-tour) –  KlausCPH Feb 6 '13 at 18:50

a = rem( bitshift( instructionWord, -21) , 2^5)

bitshift does the shifting of bits; and rem find the remainder from division by 32 giving last 5 bits' value.

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