Eqn = 
How to solve non_linear equation
Mostrar comentarios más antiguos
Respuesta aceptada
Solve it symbolically —
syms z
Eqn = z^3 == log(z)*(482036/0.18525)^5
Z = solve(Eqn)
Z = vpa(Z)
format longG
Zd = double(Z)
.
4 comentarios
Torsten
el 12 de Jun. de 2024
Why is z = 1 considered a solution ?
No idea. Apparently 1 = 0 in this instance —
syms z
Eqn = z^3 == log(z)*(482036/0.18525)^5
Z3 = subs(Eqn,z,1)
I didn’t catch that earlier.
.
@Star Strider, @Torsten, Wolfram Alpha also returned the perfect "1" as one of the solutions. But we all know that 
. Maybe that's merely an approximation because 
?
. Maybe that's merely an approximation because ? syms z
f = (z^3)/(482036/0.18525)^5;
limit(f, z, 1)
double(ans)
Plot:
z = linspace(0.9, 1.1, 20001);
y1 = z.^3;
y2 = log(z)*(482036/0.18525)^5;
plot(z, [y1; y2]), grid on, ylim([0 2])
I guess both MATLAB and Wolfram Alpha analytically computed the solution:
c = (4820360/0.018525)^7; % constant
sol = exp(-lambertw(-3/c)/3)
However, I mathematically believe that this is just an approximation with the real solution very close to being 1.
Más respuestas (0)
Categorías
Más información sobre Matrix Indexing en Centro de ayuda y File Exchange.
Productos
el 12 de Jun. de 2024
el 13 de Jun. de 2024
Community Treasure Hunt
Find the treasures in MATLAB Central and discover how the community can help you!
Start Hunting!
Translated by 
