numerical integration and solving for limit
Afficher commentaires plus anciens
hello everyone, this is my first question here.
I'm trying to find the value of x when t equals 1:0.1:10
So I don't know how to solve this problem, for example if the intervals were fixed and I wanted to find t, I would just use the commands
f(x)= (-1./(sqrt((1-x.^2)+(0.01/2)*(1-x.^4))))
a=1;
b=5;
I=int(f(x),a,b);
Can anybody help me?
how do i find the value of b when t is equal to 1:0.1:10.
Thanks for your help.
Réponse acceptée
Here is the maximum value you can insert for t:
syms x
f = 1/sqrt((1-x^2)+0.01/2*(1-x^4));
vpaintegral(f,x,-1,1)
And here is the curve of t against x.
You can cheat here: plot x against t and say you solved t = -integral ... for x. :-)
xstart = -1;
xend = 1;
xnum = linspace(xstart,xend,100);
for i=1:numel(xnum)
tnum(i) = double(vpaintegral(f,x,xnum(i),1));
end
plot(xnum,tnum)
4 commentaires
Walter Roberson
le 19 Jan 2023
oh good point, the upper bound has to be in the range -1 to +1 (lower than the lower bound!) in order to not get a complex result.
Walter Roberson
le 19 Jan 2023
It looks to me as if -1 to +1 has an area of π so the t bounds would be 0 to π. It is the x bounds that must be -1 to 1 but the result of the integral can be larger than 1
Torsten
le 19 Jan 2023
Yes, I plotted x against the value of the integral.
PTK
le 19 Jan 2023
Plus de réponses (1)
Walter Roberson
le 19 Jan 2023
0 votes
your f has x^4 and x^2 but no other powers of x.
Do a change of variables X2=x^2 and integrate with respect to X2. You will get a closed form integral involving arcsin. Transform back from X2 to x. Now you can solve the equation. Just make sure you get the right limits of integration
2 commentaires
PTK
le 19 Jan 2023
Walter Roberson
le 20 Jan 2023
The problem with this approach turns out to be that you would need x^2 to be negative to get at some of the values, which is a problem because that gets you into complex-valued x.
Catégories
En savoir plus sur Calculus dans Centre d'aide et File Exchange
Community Treasure Hunt
Find the treasures in MATLAB Central and discover how the community can help you!
Start Hunting!
Translated by 
