Equations which depend on each other with unknown initial value

조회 수: 2 (최근 30일)
Erkin Karatas
Erkin Karatas 2019년 11월 5일
댓글: Walter Roberson 2019년 11월 6일
Hi all,
I want to solve equations which depend on each other such as,
5*x_1 = 3*x_2 + 4
4*x_2 = 2*x_1 + 4*x_3 + 4
4*x_3 = 2*x_2 + 4*x_4 + 4
3*x_4 = 6*x_3 +4
I usually put the coefficients of the variables into matrix
A = [5 -3 0 0; -2 4 -4 0; 0 -2 4 4; 0 0 -6 3]
C = [4;4;4;4]
B = inv(A) * C
and get the result, since the number of variables can change and go up to 100, I wrote a 'for loop'
n=4;
for i = 2:n-1
x(1) = (3*x(2) + 4)/5
x(i) = (2 * x(i-1) + 4 *x(i+1) +4)/4
x(n) = (3 * x(i-1) + 4) / 3
end
but the results are not same, i think in the for loop matlab assumes x(2) as zero and continues, anyway if someone can solve this problem I appreciate.
Thanks.

답변 (1개)

Walter Roberson
Walter Roberson 2019년 11월 5일
n=4;
x = sym('x', [1 n]);
x(1) = (3*x(2) + 4)/5;
for i = 2:n-1
x(i) = (2 * x(i-1) + 4 *x(i+1) +4)/4;
end
x(n) = (3 * x(i-1) + 4) / 3;
  댓글 수: 4
Erkin Karatas
Erkin Karatas 2019년 11월 6일
The results are not the same with the matrix calculation
xval.x1=0.6666
xval.x2=-1.33
xval.x3=-1.33
xval.x4=-0.33
instead of
x = [2.2500
2.4167
0.2917
1.9167]
Walter Roberson
Walter Roberson 2019년 11월 6일
You should go through the equations and make sure that they are correct.
Note: when you construct equations in symbolic form, it is not necessary to do the division by 4 and whatever. You can code things like 5*x(1) == 4*x(2) + 4 inside the eq vector.

댓글을 달려면 로그인하십시오.

카테고리

Help CenterFile Exchange에서 Mathematics에 대해 자세히 알아보기

Community Treasure Hunt

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

Start Hunting!

Translated by