for loop

2 Ansichten (letzte 30 Tage)
rami
rami am 1 Apr. 2012
Hi
I have matrix M(3,3)
I need to solve this equation
for i=1:3
for j=1:3
for k=1:3
bi,j,k=(1/2)*(diff(M(k,j),theta1)+diff(M(k,i),theta1)-diff(M(i,j),theta1))
end
end
end
I need to have the answers in form
b111
b112
b121
....
b333
how i can do that thx

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Akzeptierte Antwort

Walter Roberson
Walter Roberson am 1 Apr. 2012

Weitere Antworten (3)

Andrei Bobrov
Andrei Bobrov am 1 Apr. 2012
eg
syms x
M = [x^4,2,x^(4/5)-4*x;x,2*x^3,log(x);exp(3*x),x,3*x];
solution
dM = diff(M,x);
idx = fliplr(fullfact(size(M,1)*ones(3,1)));
id = cellfun(@(x)sub2ind(size(M),idx(:,x(1)),idx(:,x(2))),{[3 2],[3 1],[1 2]},'un',0);
b = 1/2*(dM(id{1}) + dM(id{2}) - dM(id{3}));
ADD on Rami comment
eg
syms x y z
M = [x^4*z-y,z*2,x*z^(4/5)-4*x*y;x,2*z*y*x^3,log(x)/y;z*exp(3*x)-y,z*x*y^2,z*(y-z^3)*3*x];
theta = [x y z];
solution
dM = arrayfun(@(ii)diff(M,theta(ii)),1:numel(theta),'un',0);
dM = cat(3,dM{:});
[k j1 i1] = ndgrid(1:numel(theta));
id = {i1(:) j1(:) k(:)};
s = [3 2 1;3 1 2;1 2 3];
idx = cell2mat(arrayfun(@(x)sub2ind(size(dM),id{s(x,:)}),1:3,'un',0));
b = dM(idx)*[1;1;-1]/2
OR variant with loop for..end
for i1=1:3
for j1=1:3
for k=1:3
b1(i1,j1,k) = (1/2)*(diff(M(k,j1),theta(i1))...
+diff(M(k,i1),theta(j1))-diff(M(i1,j1),theta(k)));
end
end
end
b_ijk = reshape(permute(b1,[3 2 1]),[],1)
  1 Kommentar
rami
rami am 1 Apr. 2012
Thx for your answer:
In the solution I can not know
b111
b112
b121
b122
...etc
and in my example I want to make some modify that there are 3 variables theta1, theta2, theta3
for i=1:3
for j=1:3
for k=1:3
bijk=(1/2)*(diff(M(k,j),theta(i))+diff(M(k,i),theta(j))-diff(M(i,j),theta(k)))
end
end
end
So i want to find the values
b111
b112
........

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Image Analyst
Image Analyst am 1 Apr. 2012
Change "bi,j,k" to "b(i,j,k)"
  2 Kommentare
rami
rami am 1 Apr. 2012
Thx
I try but wasn't useful
Image Analyst
Image Analyst am 2 Apr. 2012
Well like Andrei and I both suggested, you should use a 3D matrix and not individually named variables. In fact the answer you accepted, Walter's, also recommends using an indexed matrix and recommends against using what you say you wanted. So we're left confused. But whatever.....as long as you got something you like, even though it's not recommended.

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rami
rami am 1 Apr. 2012
thx The link was so useful and the answer will be for one variable
for i=1:3 for j=1:3 for k=1:3
eval(sprintf('b%d%d%d= (1/2)*(diff(M(k,j),theta1)+diff(M(k,i),theta1)-diff(M(i,j),theta1))', i,j,k));
end
end
end

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