Anyone can help me to improve this code?

1 次查看(过去 30 天)
Brwa
Brwa 2013-5-22
Dear friends; I have a code which is not suitable for big matrices or unlimited matrice. I would like to make it better because some times i have a very big matrices such as A = (100,100)
A = zeros(n,n) matrix.
R = [ 0 0 0 1 1] vector
c=2
if R(5,1) == 1
A(5,5) = c
A(5,4) = - c
A(4,5) = - c
else
A(5,5) = 0
A(5,4) = 0
A(4,5) = 0
end
if R(4,1) == 1
A(4,4) = c + A(5,5)
A(3,4) = - c
A(4,3) = - c
else
A(4,4) = 0
A(3,4) = 0
A(4,3) = 0
end
.
.
.
ans
A =
0 0 0 0 0
0 0 0 0 0
0 0 0 -2 0
0 0 -2 4 -2
0 0 0 -2 2
Thanks in advance, your help always appreciated

请先登录,再回答此问题。

采纳的回答

Andrei Bobrov
Andrei Bobrov 2013-5-22
编辑:Andrei Bobrov 2013-5-22
[EDIT]
n = 5; %
R = [0 0 0 1 1]';% eg
c = 2; %
A1 = spdiags(-c*R,1,n,n);
A = A1 + A1' + spdiags(c*(R + [R(2:end);0]),0,n,n);
full(A)
OR
Rin(:,[1 3 2]) = c*[-[circshift(R,-1) R],R + [R(2:end);0]];
A = spdiags(Rin,-1:1,n,n);
full(A)
OR
Rin(:,[1 3 2]) = c*[-[circshift(R,-1) R],conv(R,[1;1],'same')];
A = spdiags(Rin,-1:1,n,n);
full(A)
  3 个评论
显示 1更早的评论
Brwa
Brwa 2013-5-22
still have the same mistake, the diagonal line should not be sum of
A(1,1) must not equal A(5,5)+A(4,4)+A(3,3)+A(2,2)+c
if R =[ 1 1 1 1 1]
A(5,5) must equa = c
A(4,4) must equal A(5,5) + c
A(3,3) must equal A(4,4) + c
A(2,2) must equal A(3,3) + c
A(1,1) must equal A(2,2) + c
And if
if R =[ 1 1 1 0 1]
A(5,5) must equa = c
A(4,4) must equal A(5,5) + 0
A(3,3) must equal 0 + c this means we only consider about original number of A(4,4) when R =[ 1 1 1 0 1] the fourth value is 0 so A(4,4) = 0 therefore, A(3,3) = 0 + c = c
A(2,2) must equal A(3,3) + c
A(1,1) must equal A(2,2) + c

请先登录,再进行评论。

更多回答(2 个)

David Sanchez
David Sanchez 2013-5-22
Ii this what you need?
for k=1:n-1
if R(k,1) == 1
A(k,k)= c + A(k+1,k+1);
else
A(k,k) = A(k+1,k+1);
end
  4 个评论
显示 2更早的评论
David Sanchez
David Sanchez 2013-5-22
I see, you have to start the for loop by the end.
c=2;
if R(5,1) == 1
A(5,5) = c
A(5,4) = - c
A(4,5) = - c
else
A(5,5) = 0
A(5,4) = 0
A(4,5) = 0
end
for k=(n-1):-1:1
if R(k) == 1
A(k,k)= c + A(k+1,k+1);
else
A(k,k) = A(k+1,k+1);
end
Brwa
Brwa 2013-5-22
oh, my god still not correct, but I still appreciate your help very very much.
the problem is for R= [ 1 1 1 0 1]
A(3,3) must = c not 2c because A(4,4) =0 so A(3,3) = c + 0 = c

请先登录,再进行评论。

Brwa
Brwa 2013-5-22
Thanks for your helps, Andrei Bobrov and David Sanchez. you guys are so nice. This is my code. it works good, to be honest i learnt alot from you two. but if someone can ake it shorter that will be great.
n=5;
A = zeros(n,n);
R = [1;1;0;1;1];
c = 2;
for i = n-1 : -1 : 2;
if R(i,1) == 1 && R(i+1,1) ==1
A(i,i) = 2*c ;
A(i,i-1) = - c ;
A(i-1,i) = - c ;
elseif R(i,1) == 1 && R(i+1,1) ~=1
A(i,i) = c ;
A(i,i-1) = - c ;
A(i-1,i) = - c ;
elseif R(i,1) ~= 1 && R(i+1,1) ==1
A(i,i) = c ;
A(i,i-1) = 0 ;
A(i-1,i) = 0 ;
elseif R(i,1) ~= 1
A(i,i) = 0 ;
A(i,i-1) = 0 ;
A(i-1,i) = 0 ;
end
if R(1,1)== 1 && R(2,1) == 1
A(1,1) = 2*c ;
elseif R(1,1) == 1 || R(2,1) == 1
A(1,1) = c;
else
A(1,1) = 0;
end
if R(n,1) ==1 && R(n-1,1) ==1
A(n,n) = c ;
A(n-1,n) = -c;
A(n,n-1) = -c;
A(n-1,n-1) = 2*c;
elseif R(n,1) ==1
A(n,n) = c ;
A(n-1,n) = -c;
A(n,n-1) = -c;
A(n-1,n-1) = c;
end
end
Thank you again

类别

Help CenterFile Exchange 中查找有关 Matrix Indexing 的更多信息

标签

产品

Community Treasure Hunt

Find the treasures in MATLAB Central and discover how the community can help you!

Start Hunting!

Translated by