Question #28428

1 Answer
Peter M.
Aug 5, 2017

#x(x^3+2x^2+x-1)#

Explanation:

Let

#f(x)=x^4+2x^3+x^2-x#

First, to find factors I would try to solve:

#f(a)=0#

for small values of #a#.

E.g. #f(-1)# or #f(-2)#

If #f(a)=0#, then #(x-a)# is a factor.

Unfortunately, no values of #a# will work so all you can do is take out the common factor of #x#:

#f(x)=x(x^3+2x^2+x-1)#

So, can we factorise the cubic part in brackets further?

Well, if we graph the cubic part, you can see that there is only one x-intercept, which means that the cubic function can't be factorised any further (more factors means more x-intercepts).

graph{x^3+2x^2+x-1 [-10, 10, -5, 5]}

So because the cubic part can't be factorised, taking out #x# is as far as you can go without getting into trouble with the cops :)

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