multiply by two matrix

2021 9 月 26
1 回答
2021 9 月 27 に更新
4 ビュー (30 日間)

0 投票

Mj = [cos (kj hj) i*sin(kj hj) /kj ; i*kj*sin(kj hj) cos (kj hj) ];
kj=sqrt(nj^2*k02-x^2);
Take
n1=1.521;n2=2.66;k0=1;h1=1.5e-6;h2=1e-6
multiply M1*M2

4 件のコメント
2 件の古いコメントを表示 2 件の古いコメントを非表示

Image Analyst
Image Analyst 2021 年 9 月 26 日
And the question is. . . . 🤔
Steven Lord
Steven Lord 2021 年 9 月 26 日
This sounds like a homework assignment. If it is, show us the code you've written to try to solve the problem and ask a specific question about where you're having difficulty and we may be able to provide some guidance.
If you aren't sure where to start because you're not familiar with how to write MATLAB code, I suggest you start with the MATLAB Onramp tutorial (https://www.mathworks.com/support/learn-with-matlab-tutorials.html) to quickly learn the essentials of MATLAB.
If you aren't sure where to start because you're not familiar with the mathematics you'll need to solve the problem, I recommend asking your professor and/or teaching assistant for help.
shiv gaur
shiv gaur 2021 年 9 月 26 日
編集済み: Walter Roberson 2021 年 9 月 27 日
%this is program
function kp1
close all;
clear all;
function y=F(x)
for t2=1
k0=1;
n1=1.521;
%n2=2.66;
n2=4.1-0.211*1i;
ns=1.512;
%nc=0.15-1i*3.2;
nc=1;
k1=sqrt(n1.^2*k0.^2-x.^2);
k2=sqrt(n2.^2*k0.^2-x.^2);
t1=1.5;
m11= cos(t1*k1)*cos(t2*k2)-(k2/k1)*sin(t1*k1)*sin(t2*k2);
m12=(1/k2)*(cos(t1*k1)*sin(t2*k2)*1i) +(1/k1)*(cos(t2*k2)*sin(t1*k1)*1i);
m21= (k1)*cos(t2*k2)*sin(t1*k1)*1i +(k2)*cos(t1*k1)*sin(t2*k2)*1i;
m22=cos(t1*k1)*cos(t2*k2)-(k1/k2)*sin(t1*k1)*sin(t2*k2);
A=[m11 m12 ; m21 m22];
disp(eig(A))
gs=x.^2-ns.^2*k0.^2;
gc= x.^2-nc.^2*k0.^2;
y= 1i*(gs*m11+gc*m22)-m21+gc*gs*m12 ;
%y=x^2+x+1;
end
end
p0=1;
p1=1.5;
p2=2;
tol = 10^-5;
n = 50;
h1 = p1 - p0;
h2 = p2 - p1;
del1 = (F(p1)-F(p0))./h1;
del2 = (F(p2)-F(p1))./h2;
d = (del2-del1)./(h2+h1);
I = 3;
%Step 2
while I <= n
%Step 3
b = del2+h2.*d;
D = sqrt(b.^2-4.*F(p2).*d); % could be complex
%Step 4
if abs(b - D) < abs(b + D)
E = b + D;
else
E = b - D;
end
%Step 5
h = -2.*F(p2)./E;
p = p2 + h;
if I == 3
table{1} = 'Muller''s Method Iterations';
table{2}=' I P f(P) ';
table{3}='-----------------------------------------------------';
end
str = sprintf('%3u: % 6.6f + %6.6fi % 6.6f + %6.6fi',I,real(p),imag(p),real(F(p)),imag(F(p)));
table{I + 1} = str; %#ok<*AGROW>
%Step 6
if abs(h) < tol
val = p;
table = char(table);
break
end
p0 = p1;
p1 = p2;
p2 = p;
h1 = p1 - p0;
h2 = p2 - p1;
del1 = (F(p1)-F(p0))./h1;
del2 = (F(p2)-F(p1))./h2;
d = (del2-del1)./(h2+h1);
I = I + 1;
end
disp(p)
end
Jan
Jan 2021 年 9 月 26 日
Please format your code properly. Use the icons on top of the field for editing in the forum.
You still did not ask a question.

サインインしてコメントする。

サインインしてこの質問に回答する。

回答 (1 件)

Walter Roberson
Walter Roberson 2021 年 9 月 27 日
Ran in:

0 投票

Ran in:
syms x
n = [1.521, 2.66];
k0 = 1;
h = [1.5e-6, 1e-6];
k = @(j) sqrt(n(j).^2*k0.^2-x.^2);
M = @(j) [
cos(k(j) .* h(j)), i*sin(k(j) .* h(j))/k(j)
i .* k(j) .* sin(k(j).*h(j)), cos(k(j) .* h(j))
]
M = function_handle with value:
@(j)[cos(k(j).*h(j)),i*sin(k(j).*h(j))/k(j);i.*k(j).*sin(k(j).*h(j)),cos(k(j).*h(j))]
M12 = M(1) * M(2)
M12 = 

カテゴリ

ヘルプ センター および File ExchangeMathematics についてさらに検索

製品

リリース

R2021a

タグ

質問済み:

shiv gaur
shiv gaur
2021 年 9 月 26 日

回答済み:

Walter Roberson
Walter Roberson
2021 年 9 月 27 日

Community Treasure Hunt

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

Start Hunting!

Translated by