How do you find all zeros of the function 2x^6-3x^2-x+1?

1 Answer
George C.
Apr 2, 2016

See explanation...

Explanation:

By the rational roots theorem, the only possible rational zeros are expressible in the form p/q with integers p and q with p a divisor of the constant term 1 and q a divisor of the coefficient 2 of the leading term.

That means that the only possible rational zeros are:

+-1/2, +-1

If we write f(x) = x^6-3x^2-x+1 and evaluate f(x) for these values, we find that none work. So f(x) has no rational zeros.

Since f(x) has degree 6 it is not surprising to find that its roots have no simple closed algebraic formulation.

We can find them numerically, for example by using Newton's method.

f'(x) = 6x^5-6x-1

If we choose an initial approximation a_0 for a zero of f(x), then we can find better approximations by iterating using the formula:

a_(i+1) = a_i - f(x)/(f'(x)) = a_i - (x^6-3x^2-x+1)/(6x^5-6x-1)

The two Real zeros can readily be found by putting these formulae into a spreadsheet. To find the four Complex zeros is a little more complicated. If your spreadsheet application (like mine) does not handle Complex numbers directly, then you need to separate out Real and imaginary parts in separate columns.

If I have sufficient time, I may create such a spreadsheet.

Related questions
See all questions in Zeros
Impact of this question
1412 views around the world
You can reuse this answer
Creative Commons License