0 votes

I have a polynomial and parameters in it,
a=2, c=1, d=2 , g=0.5, k=2 , f=2
e=[2,8,5,4]
b=[1,2,3,4]
p=[ -c.*k+ (f.^2)*(e.^2)/a+2*e.*g, d.*e-(f*b.*e)/a]
roots(p)
I calculate roots of polynomial given parameter values.
But e an b parameters have vector values.
I want to know if it obtains roots for every combination of the e and b values or
it simply gets roots when e=2, b=1 , then b=8,e=2,... ?

1 commentaire
Afficher -1 commentaires plus anciens Masquer -1 commentaires plus anciens

Ani Asoyan
Ani Asoyan le 2 Juin 2020
I want to know if it takes into account cross-combinations of e and b ?

Connectez-vous pour commenter.

Connectez-vous pour répondre à cette question.

 Réponse acceptée

Ameer Hamza
Ameer Hamza le 2 Juin 2020
Modifié(e) : Ameer Hamza le 2 Juin 2020

0 votes

Your current code does not solve the problem, as you described. You need to use for-loop
a=2, c=1, d=2 , g=0.5, k=2 , f=2
e=[2,8,5,4]
b=[1,2,3,4]
r = zeros(numel(e), 1) % polynomial is 1st order so there will be only one root
for i=1:numel(e)
p = [ -c.*k+(f.^2)*(e(i).^2)/a+2*e(i).*g, d.*e(i)-(f*b(i).*e(i))/a]
r(i) = roots(p)
end

5 commentaires
Afficher 3 commentaires plus anciens Masquer 3 commentaires plus anciens

Ani Asoyan
Ani Asoyan le 2 Juin 2020
does this calculate the roots in the case of every combinations of e and b ?
Ameer Hamza
Ameer Hamza le 2 Juin 2020
Yes, it calculate 4 roots corresponding to the 4 elements in e and b.
Ani Asoyan
Ani Asoyan le 2 Juin 2020
can I make this for all combinations ?
Ani Asoyan
Ani Asoyan le 2 Juin 2020
like in cross combinations, for example e=8,b=1 or e=8,b=3 ,ect...
Ameer Hamza
Ameer Hamza le 3 Juin 2020
Following code use cross-combination
a=2, c=1, d=2 , g=0.5, k=2 , f=2
e=[2,8,5,4]
b=[1,2,3,4]
[E, B] = ndgrid(e, b);
e = E(:);
b = B(:);
r = zeros(numel(e), 1) % polynomial is 1st order so there will be only one root
for i=1:numel(e)
p = [ -c.*k+(f.^2)*(e(i).^2)/a+2*e(i).*g, d.*e(i)-(f*b(i).*e(i))/a]
r(i) = roots(p)
end
sol = [e, b, r]
1st column of 'sol' is 'e' value, 2nd is 'b' values, and 3rd is the corresponding root.

Connectez-vous pour commenter.

Plus de réponses (1)

Steven Lord
Steven Lord le 2 Juin 2020

0 votes

As written your code solves for the roots of the 7th order polynomial whose coefficients are:
p =
8 134 53 34 2 0 -5 -8
This is:
8*x^7 + 134*x^6 + 53*x^5 + 34*x^4 + 2*x^3 - 5*x - 8
If instead you want to find the roots of the four first order polynomials created by specifying each element of e and b in the expression for p, use a for loop instead.
>> for q = 1:numel(e)
p=[ -c.*k+ (f.^2)*(e(q).^2)/a+2*e(q).*g, d.*e(q)-(f*b(q).*e(q))/a]
end
p =
8 2
p =
134 0
p =
53 -5
p =
34 -8
If you want to find the roots of the sixteen first order polynomials with elements taken from e and from b (and not necessarily the same element of each vector) the easiest way is to use a double for loop.

2 commentaires
Afficher Aucune Masquer Aucune

Ani Asoyan
Ani Asoyan le 2 Juin 2020
sorry I didn't understand... my polynomial is 1st order
Steven Lord
Steven Lord le 2 Juin 2020
It is not first order as you've written it. Use one or two for loops to construct and solve the four or sixteen first order polynomials or use the explicit formula for the solution of a linear equation.
% if q*x = w then x = w./q
a=2, c=1, d=2 , g=0.5, k=2 , f=2
e=[2,8,5,4]
b=[1,2,3,4]
q = -c.*k+ (f.^2)*(e.^2)/a+2*e.*g;
w = d.*e-(f*b.*e)/a;
x = w./q % Using ./ instead of / because w and q are vectors
check = q.*x - w % Should be all 0's or close to it

Connectez-vous pour commenter.

Catégories

En savoir plus sur Polynomials dans Centre d'aide et File Exchange

Tags

Community Treasure Hunt

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

Start Hunting!

Translated by