how to differentiate and plot of this function

8 visualizzazioni (ultimi 30 giorni)
shiv gaur
shiv gaur il 25 Gen 2022
Commentato: Hiro Yoshino il 25 Gen 2022
k1= @(x) sqrt(1-x^2);
k2=@(x) sqrt(2-x^2);
k3=@(x) sqrt(3-x^2);
k4=@(x) sqrt(4-x^2);
r1=@(x) (k1-k2)/(k1+k2);
r2=@(x) (k3-k4)/(k3+k4);
r3= @(x) (k2-k3)/(k2+k3);
y=@(x,d2,d3) -2*atan(1i*(1-r1)/(1+r1))*exp((1-r2*k1*d2)/(1+r2*km*d2))--2*atan(1i*(1-r3)/(1+r3))*exp((1-k2*d3)/(1+r4*k2*d3));
how to calculate dy/dx dy/dd2 and dy/dd3
plot d2 vs dy/dd2/dy/dd3
variation of d2 from 1 to 100;
y is multivariable depending upon d2,d3 x

Accedi per rispondere a questa domanda.

Risposte (1)

Hiro Yoshino
Hiro Yoshino il 25 Gen 2022
Modificato: Hiro Yoshino il 25 Gen 2022
Ran in:
Why don't you use symbolic math expressions as follows?
Please run the script below:
syms k1(x) k2(x) k3(x) k4(x) r1(x) r2(x) r3(x) y(x,d2,d3)
k1 = sqrt(1-x^2)
k1 = 
k2 = sqrt(2-x^2)
k2 = 
k3 = sqrt(3-x^2)
k3 = 
k4 = sqrt(4-x^2)
k4 = 
r1 = (k1-k1)/(k1+k2)
r1 = 
0
r2 = (k3-k4)/(k3+k4)
r2 = 
r3 = (k2-k3)/(k2+k3)
r3 = 
Note that the first term (atan) does not work due to its singularity and you've got some typos in the expression and I corrected as follows:
y = -2*atan((1-r1)/(1+r1)) *exp((1-r2*k1*d2)/(1+r2*k1*d2))-2*atan(1i*(1-r3)/(1+r3))*exp((1-k2*d3)/(1+r3*k2*d3))
y = 
dydx = diff(y,x)
dydx = 
dydd3 = diff(y,d2)
dydd3 = 
dydd4 = diff(y,d3)
dydd4 = 
  2 Commenti
shiv gaur
shiv gaur il 25 Gen 2022
is there any method with out syms pl plot the solve equation
Hiro Yoshino
Hiro Yoshino il 25 Gen 2022
I don't think what you want to do is solve anything. I suppose you want to derive the partial derivatives.
Iif you want to get the analytic forms of the derivatives, use Symbolic Math otherwise numerical derivative would be a good fit.
The easiest way to use numerical derivative is use "approximation" such as numerical derivatives - you can chop the variables into small intervals and perform the calculations as shown in the document.

Accedi per commentare.

Categorie

Scopri di più su Programming in Help Center e File Exchange

Tag

Prodotti


Release

R2021b

Community Treasure Hunt

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

Start Hunting!

Translated by