If I have an array of 4 dimensions say A=complex(​rand(2,2,2​,2),rand(2​,2,2,2)). If I need to calculate the inverse of this matrix, as defined beow , how should I do it?

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vishav Rattu
vishav Rattu el 21 de Oct. de 2016
Comentada: vishav Rattu el 21 de Oct. de 2016
I need to compute B(x,y,z,w) such that if I multiply the terms of A and B , I should get an identity matrix I(a,b,c,d):
I=zeros(a,b,c,d);
for a=1:2
for b=1:2
for c=1:2
for d=1:2
for i=1:2
for j=1:2
I(a,b,c,d)=A(a,b,i,j)*B(i,j,c,d)+I(a,b,c,d);
end
end
end
end
end
end
The I(a,b,c,d)= 1 only when a=b=c=d
  2 comentarios
Matt J
Matt J el 21 de Oct. de 2016
It is puzzling that you are organizing your data in 4D form, when you appear to want to do simple 2D matrix algebra with it. Are you sure it wouldn't be better just to reshape your data into 2D form
A=reshape(A,4,4)
and keep it that way?
vishav Rattu
vishav Rattu el 21 de Oct. de 2016
Editada: vishav Rattu el 21 de Oct. de 2016
But if I reshape it, will I get the above B matrix that is required? That is, will B satisfy the above condition, that is I(a,b,c,d)=1 only if a=b=c=d? If I am able to get such a B, then I don't need to keep it in a 4d form.

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Matt J
Matt J el 21 de Oct. de 2016
[a,b,c,d]=ndgrid(1:2);
I=reshape(a==b & b==c & c==d, 4,4);
A=reshape(A,4,4);
B=reshape( A\I , 2,2,2,2);

Más respuestas (1)

KSSV
KSSV el 21 de Oct. de 2016
Are you looking for something like this?
A = rand(2,2,2,2) ;
B = zeros(2,2,2,2) ;
for i = 1:2
for j = 1:2
B(:,:,i,j) = inv(A(:,:,i,j)) ;
end
end
% check
for i = 1:2
for j = 1:2
A(:,:,i,j)*B(:,:,i,j)
end
end

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