Question

How do you factor `5m^2 - 9mn - 18n^2`?

Answer 1

Since all the terms are of order 2, factoring `5m^2-9mn-18n^2` is analogous to factoring the quadratic `5x^2-9x-18`.

This quadratic is in the form `ax^2+bx+c`, with `a=5`, `b=-9` and `c=-18`.

The discriminant is given by the formula:

`Delta = b^2-4ac = (-9)^2 - (4xx5xx-18)`

`=81+360=441=21^2`

Since this is a positive, perfect square, the quadratic `5x^2-9x-18 = 0` has two rational solutions, given by the formula:

`x = (-b+-sqrt(Delta))/(2a) = (9+-21)/10`

that is `x=3` or `x=-6/5`

These correspond to factors `(x-3)` and `(5x+6)`

These factors correspond to factors `(m-3n)` and `(5m+6n)` for the original expression.