Info

此问题已关闭。 请重新打开它进行编辑或回答。

root of the equation using while loop

1 次查看(过去 30 天)
shiv gaur
shiv gaur 2022-2-16
关闭: Cris LaPierre 2022-2-16
k0=(2*pi/0.6328)*1e6;
t2=1.5e-6;
n1=1.512;n2=1.521;n3=4.1-1i*0.211;
n4=1;
m=0;
x=1.512;
t3=1e-9;
k1=k0*sqrt(n1^2-x^2);
k2=k0*sqrt(n2^2-x^2);
k3=k0*sqrt(n3^2-x^2);
k4=k0*sqrt(n4^2-x^2);
tol = 1e-12;
n = 1;
y =-(k2)*t2+atan(k1/1i*k2)+atan((k3/k2)*tan(atan(k4/1i*k2)-k3*t3))+m*pi;
how to use program using while loop having tol and iteration x is the root of transcedeental equation

此问题已关闭。

回答(0 个)

此问题已关闭。

标签

产品


版本

R2021b

Community Treasure Hunt

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

Start Hunting!

Translated by