How to compute number of bit change among consecutive binary numbers?

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ASHA PON on 14 Dec 2022

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Commented: Star Strider on 16 Dec 2022

I am having 7 random binary numbers of 3 bit. Now, I need to compute how many number of bits are changed among consecutive numbers.

Example:

A= 110; 101; 011; 111; 100; 001; 010

Expected output:

C=

110 101 011 111 100 001 010

110 - 2 2 1 1 3 1

101 2 - 2 1 1 1 3

011 2 2 - 1 3 2 1

111 1 1 1 - 2 2 2

100 1 1 3 2 - 2 2

001 3 1 1 2 2 - 2

010 1 3 1 2 2 2 -

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Answer 1

Voss on 14 Dec 2022

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% A = 110; 101; 011; 111; 100; 001; 010
A = dec2bin([6; 5; 3; 7; 4; 1; 2],3)
A = 7×3 char array
    '110'
    '101'
    '011'
    '111'
    '100'
    '001'
    '010'
N = size(A,1);
C = zeros(N);
for ii = 1:N
    for jj = 1:N
        C(ii,jj) = nnz(A(ii,:) ~= A(jj,:));
    end
end
disp(C);
     0     2     2     1     1     3     1
     2     0     2     1     1     1     3
     2     2     0     1     3     1     1
     1     1     1     0     2     2     2
     1     1     3     2     0     2     2
     3     1     1     2     2     0     2
     1     3     1     2     2     2     0

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Voss on 16 Dec 2022

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What is matde?

matde = [6; 5; 3; 7; 4; 1; 2]
matde = 7×1
     6
     5
     3
     7
     4
     1
     2
matbi=de2bi(matde,3,'left-msb')
matbi = 7×3
     1     1     0
     1     0     1
     0     1     1
     1     1     1
     1     0     0
     0     0     1
     0     1     0
yy=[];
for i=1:7
    aas=matbi(i,:);
    xxy=[];
    for ii=1:7 
        y=xor(aas,matbi(ii,:));
        xy=sum(y);
        xxy=[xxy xy];
    end
    yy=[yy; xxy];
end
yy
yy = 7×7
     0     2     2     1     1     3     1
     2     0     2     1     1     1     3
     2     2     0     1     3     1     1
     1     1     1     0     2     2     2
     1     1     3     2     0     2     2
     3     1     1     2     2     0     2
     1     3     1     2     2     2     0

yy seems to be correct, in that it is the C you asked for in your question.

I'm not sure what the remaining part of the code is for (constructing dxy). You're removing the zeros on the diagonal of yy, then putting the remaining elements of yy into a zeros matrix at the non-diagonal positions, so you end up with the same thing you started with (dxy = yy).

yy(yy==0)=[];
dxxy=reshape (yy,[6,7]);
S = size(dxxy)+[1,0];
dxy = zeros(S);
dxy(~eye(S)) = dxxy
dxy = 7×7
     0     2     2     1     1     3     1
     2     0     2     1     1     1     3
     2     2     0     1     3     1     1
     1     1     1     0     2     2     2
     1     1     3     2     0     2     2
     3     1     1     2     2     0     2
     1     3     1     2     2     2     0

ASHA PON on 16 Dec 2022

Actually while forming yy matrix, my size will be 6*7. But i need 7*7, so i included 0 diagonally to proceed with further calculation.

Voss on 16 Dec 2022

yy is 7x7 before you remove the zeros, as shown above.

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Answer 2

Star Strider on 15 Dec 2022

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Use pdist with the 'hamming' distance metric then squareform to create the matrix —

b = {'110'    '101'    '011'    '111'    '100'    '001'    '010'};
d = pdist(b, 'hamming');
Warning: Converting cell data to double.
dmtx = squareform(d*3);                                             % Differences Are Reported As Percentages, So Multiply By The Length Of The Strings To Get Integers
VNRN = cellfun(@(x)sprintf('%s',x),b, 'Unif',0);
Result = array2table(dmtx, 'VariableNames',VNRN, 'RowNames',VNRN)   % Create A 'table' To Get  The Desired Result
Result = 7×7 table
           110    101    011    111    100    001    010
           ___    ___    ___    ___    ___    ___    ___

    110     0      2      2      1      1      3      1 
    101     2      0      2      1      1      1      3 
    011     2      2      0      1      3      1      1 
    111     1      1      1      0      2      2      2 
    100     1      1      3      2      0      2      2 
    001     3      1      1      2      2      0      2 
    010     1      3      1      2      2      2      0 

The variable names and row names do not have to be valid MATLAB variable names, however if you want to use them as such, change the ‘VNRN’ function to:

VNRN = cellfun(@(x)sprintf('%_s',x),b, 'Unif',0);

or something similar so that they all begin with a non-numeric character.

.

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ASHA PON on 16 Dec 2022

Thank you for the reply. Actually, I have solved the problem.

Star Strider on 16 Dec 2022

My pleasure!

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How to compute number of bit change among consecutive binary numbers?

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