Building up a Matrix using for LOOP and summation

2 Ansichten (letzte 30 Tage)
Abdulrahman Odhah
Abdulrahman Odhah am 5 Apr. 2020
Kommentiert: Abdulrahman Odhah am 16 Apr. 2020
Hello fellows,
I am trying to make this equation but I couldn't do the summaiton part , i tried to use the double for loop but still not sure how to do the summation part,
I have the matrix " a " already defined 4x4 also initial l and u matrices are defiend l=eye(N),u=zeros(N,N);
any hints?

Melden Sie sich an, um diese Frage zu beantworten.

Akzeptierte Antwort

David Hill
David Hill am 5 Apr. 2020
I believe the below is correct.
I=eye(4);
u=zeros(4);
u(1,1:4)=a(1,1:4);
I(1:4,1)=a(1:4,1);
for i=2:4
for j=1:4
u(i,j)=a(i,j)-sum(I(i,1:i-1).*u(1:i-1,j)');
if i<j
I(j,i)=(I(j,i)-sum(I(j,1:i-1).*u(1:i-1,i)'))/u(i,i);
end
end
end
  2 Kommentare
Abdulrahman Odhah
Abdulrahman Odhah am 8 Apr. 2020
I think its the correct one also, I'll try it on some values,
thanks a lot, for your suuport,
Abdulrahman Odhah
Abdulrahman Odhah am 16 Apr. 2020
I've applied the code on some known values, this code is supposed to find the lu matrices of a matrix A, using the above expression
what i've got from the code given by you is the following,
I =
6.0000 0 0 0
4.0000 1.0000 0 0
-2.0000 -0.5333 1.0000 0
3.0000 0.8000 0.0845 1.0000
u =
6.0000 4.0000 2.0000 1.0000
-20.0000 -15.0000 -8.0000 -2.0000
-0.6667 2.0000 4.7333 8.9333
1.0563 1.8310 4.0000 -1.1549
I thing that the code representing the mathematical expression has to produce the following
I =
1.0000 0 0 0
0.6667 -0.5000 0.5000 1.0000
-0.3333 1.0000 0 0
0.5000 0 1.0000 0
u=
6.0000 4.0000 2.0000 1.0000
0 3.3333 5.6667 8.3333
0 0 3.0000 0.5000
0 0 0 5.2500
Thanks again for your suuport.

Melden Sie sich an, um zu kommentieren.

Weitere Antworten (0)

Kategorien

Mehr zu Loops and Conditional Statements finden Sie in Help Center und File Exchange

Tags

Produkte


Version

R2019b

Community Treasure Hunt

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

Start Hunting!

Translated by