Odd Output From Inverse Laplace Transform
Ältere Kommentare anzeigen
Hello All,
I'm trying to find the inverse laplace transform of the function:
(((s^3)+0.2*(s^2)+(0.8*s)+1)^-1)
OR equivalent
1/(((s^3)+0.2*(s^2)+(0.8*s)+1)
Here is my code:
syms step3S;
step3S=(((s^3)+0.2*(s^2)+(0.8*s)+1)^-1)*(1/s);
step3Y=ilaplace(step3S,s,t)
Here is the output:
1 - sum((4*exp(r15*t) + r15*exp(r15*t) + 5*r15^2*exp(r15*t))/(15*r15^2 + 2*r15 + 4), r15 in RootOf(s15^3 + s15^2/5 + (4*s15)/5 + 1, s15))
Why doesn't this have a clean execution on the output in terms of sin, cosine, and exponentials? I did this with several functions but MatLab balked at this one for some reason. I tried it in Mathematica and it spit right out but I don't understand what I'm doing wrong in Matlab.
If someone could propose a method that will output this inverse laplace transform clean, I would greatly appreciate it!
Thank you , - Alex
3 Kommentare
Melany
am 6 Mär. 2012
Not sure, but I'm having trouble figuring out the inverse laplace transform of an exponential. Do you happen to have any hints?
Andrew Newell
am 6 Mär. 2012
The first line should be
syms s t
sach van
am 10 Apr. 2019
Use vpa(ilaplace()) to output correctly
Antworten (1)
Walter Roberson
am 6 Mär. 2012
0 Stimmen
Do you want the numeric form, or do you want the analytic form?
By default MuPad converts all floating point values in to rational values, and then solves using those rational values. Pure rational coefficients are the signal to MuPAD to find an analytic solution. The analytic solution happens to have RootOf(), corresponding to the 3 roots of the cubic in the denominator of the original expression.
Kategorien
Mehr zu Special Values finden Sie in Hilfe-Center und File Exchange
am 10 Apr. 2019
Community Treasure Hunt
Find the treasures in MATLAB Central and discover how the community can help you!
Start Hunting!
Translated by 
