Real Roots of a Polynomial

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Philosophaie
Philosophaie on 18 Sep 2013
I have used "solve" to factor a fourth order polynomial. It has four roots with three complex numbers. I used:
xf = solve(x^4+7*x^3-8*x^2+5*x+2,x)
if (isreal(xf)==1)
...
end;
to try to pull out the real roots but it did not work.
Is there a better way?
  2 Comments
Matt Kindig
Matt Kindig on 18 Sep 2013
Edited: Matt Kindig on 18 Sep 2013
Are you sure there are real roots to the polynomial? It is not a given that there are.
Azzi Abdelmalek
Azzi Abdelmalek on 18 Sep 2013
Polynomial with real coefficient can not have an odd number of complex roots,

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Accepted Answer

Roger Stafford
Roger Stafford on 18 Sep 2013
Edited: Roger Stafford on 18 Sep 2013
Use 'roots' to find the roots of polynomials.
r = roots([1,7,-8,5,1]); % Get all the roots
r = r(imag(r)==0); % Save only the real roots
The 'isreal' function is true only if All elements of a vector are real, so it isn't appropriate for sorting out the real roots.
A polynomial with all real coefficients such as yours cannot have an odd number of complex roots. They must occur in conjugate pairs. As you see, in your particular polynomial there are just two complex roots, which are conjugates of one another.
  1 Comment
Philosophaie
Philosophaie on 18 Sep 2013
Edited: Philosophaie on 18 Sep 2013
I get:
acp1 =
[ empty sym ]
There is a real root to the polynomial in question.
It works my mistake.
Is there any way of getting Matlab to complete the addition,subtraction, mult and divide?

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More Answers (1)

Azzi Abdelmalek
Azzi Abdelmalek on 18 Sep 2013
%P=x^4+7*x^3-8*x^2+5*x+2
p=[1 7 -8 5 2]
result=roots(p)
  2 Comments
Azzi Abdelmalek
Azzi Abdelmalek on 18 Sep 2013
If all your roots are real,
syms x
factor(x^4+7*x^3-8*x^2+5*x+2)
should work
Roger Stafford
Roger Stafford on 18 Sep 2013
Only two of the roots are real. The other two are a complex conjugate pair. However the polynomial can still be factored using these complex values.

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