Azzera filtri
Azzera filtri

How to solve a 2nd degree equation of matrix ?

6 visualizzazioni (ultimi 30 giorni)
Tahn
Tahn il 26 Mag 2013
Hello,
Pretty new with matlab, I'd like to know how to solve a second-degree equation of matrix : P*B0-P²*C=B1 All of the variables are 7*7 matrix, and I'm looking for P.
I used
temp=solve('P*B0-(P^2)*C=B1')
subs(temp)
I get a result, but it's mainly with NaN and Inf. As it shouldn't be the case, I guess my method isn't the right one, but I've no clue how to do it, and google doesn't really help.
So I'm counting on you !
Thanks !

Accedi per rispondere a questa domanda.

Risposte (3)

Stephan M. H.
Stephan M. H. il 26 Mag 2013
Hi,
Unfortunately you didn't specify what you have and how you defined it but...
the function solve needs symbolic arguments, i.e., you need to create all matrices with the commands sym or syms
The values of B and C matrices should be given to you. The unkown P you could define by (e.g., 2x2 matrix)
syms p1 p2 p3 p4
P_s = sym([p1 p2; p3 p4])
B0_s = sym(B0)
...
Then use
RES = solve(P*B0-P^2*C==B1) % (without '...')
The command subs is only needed if you don't have values for the B and C matrices.
Hope this helps,
Stephan
Tahn
Tahn il 26 Mag 2013
Modificato: Tahn il 26 Mag 2013
Thanks for your answer, I'm going to try it right away.
My bad, I didn't specify that I defined B0, B1 and C (Basically, withtout the command sym, just with :
B0 = [1,-0.4,0.44,0,0,0,0;0,1 ...]
So I have to define p1 until p49, and then write
P_s=sym(p1...p49) ?
That seems pretty long though ! But doable, so let's see !
Edit : my bad, I read too fast and didn't understood what sym did. I just have to rewrite P with all the baby variables inside, and change the form of the 3 know matrix with sym.
Tahn
Tahn il 26 Mag 2013
After about 45 minutes of calculation, it still didn't work :( :
>> RES = solve(P_s*B0_s-P_s^2*C_s==B1_s)
Warning: Solutions might be lost. [solvelib::allvalues_warning]
RES =
p1: [1x1 sym]
p2: [1x1 sym]
p3: [1x1 sym]
...
p48: [1x1 sym]
p49: [1x1 sym]
Et si je veux voir ce qu'il y a dans p1 :
>> p1
p1 =
p1
  1 Commento
Stephan M. H.
Stephan M. H. il 27 Mag 2013
I can't help with the first warning, and for the second problem I can only guess what you are writing there in French, but you might want to try
RES.p1
if you used
syms p1 ....
to define everything, p1 etc. still contain only symbolic values. the results is stored in the structure RES
best, Stephan

Accedi per commentare.

Categorie

Scopri di più su Numbers and Precision in Help Center e File Exchange

Tag

Community Treasure Hunt

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

Start Hunting!

Translated by