Problem with iteration involving matrix

Question

muhammad muda il 28 Mag 2019

0
Link

Link diretto a questa domanda

https://it.mathworks.com/matlabcentral/answers/464438-problem-with-iteration-involving-matrix

Commentato: muhammad muda il 28 Mag 2019

Hi,

I have problem in my coding that you can see in the attachment. Initially I have 4x4 matrix and I am computing the distance between each rows to find the compatibility C.

Everything seems good in the first iteration (for jj = 1:1). I have 4x4 matrix for C.

In second iteration (for jj = 1:2) the number of rows has been reduced to 3, hence I should be getting 3x3 matrix for C. But, I still get 4x4 matrix.

Please help me. Thank you.

Mmax = [8 2 3 9; 7 3 5 9; 6 4 7 10; 5 1 8 7]; %setting the initial matrix Mmin and Mmax
Mmin = Mmax;
for jj = 1:2 % jj = 1:1 for only 1 iteration
    for i = 1:size(Mmax,1)
    for j = 1:size(Mmin,1)
        A = Mmax(i,:)
        B = Mmax(j,:)
        Y = Mmin(i,:)
        Z = Mmin(j,:)
        length = 0;
        for k = 1:4
            length = length + (max(A(k),B(k)) - min(Y(k), Z(k)));           
        end
        
        length = length/4;
        C(i,j) = 8 - length; %after 2nd iteration, i and j are both 3. But why do I have 4x4 matrix for C?
        
    end
    
end
C = C - diag(diag(C));
maximum = max(max(C));
[x,y] = find(C==maximum);
%start merging
R1 = Mmax(x(1),:);
R2 = Mmin(y(1),:);
Rmax = max(R1,R2);
Rmin = min(R1,R2);
Mmax(x(1),:) = [];
Mmax(y(1),:) = [];
Mmin(x(1),:) = [];
Mmin(y(1),:) = [];
Mmax = [Mmax(1:end,:); Rmax]
Mmin = [Mmin(1:end,:); Rmin]
end

0 Commenti
Mostra -2 commenti meno recentiNascondi -2 commenti meno recenti

Accedi per commentare.

Accedi per rispondere a questa domanda.

Answer 1

KALYAN ACHARJYA il 28 Mag 2019

1
Link

Link diretto a questa risposta

https://it.mathworks.com/matlabcentral/answers/464438-problem-with-iteration-involving-matrix#answer_376932

Modificato: KALYAN ACHARJYA il 28 Mag 2019

Apri in MATLAB Online

Why you expect that when jj=2 the C should be 3x3?

No

Your code is independent with jj, have you seen anywhere that apart from following line

for jj=1:2

jj just use to interarte the code two times, rest part of the code jj has no role.

Hence irrespective of any value of jj, you will get the following same output

The interation number 1 
         0    7.0000    5.7500    5.2500
    7.0000         0    6.7500    5.7500
    5.7500    6.7500         0    6.0000
    5.2500    5.7500    6.0000         0
 The interation number 2 
         0    6.0000    5.7500    5.2500
    6.0000         0    5.0000    5.7500
    5.7500    5.0000         0    6.0000
    5.2500    5.7500    6.0000         0