Question

How do you find the roots, real and imaginary, of `y=(4x-5)(x+1)` using the quadratic formula?

Answer 1

`x_1=5/4`
`x_2=-1`

Explanation:

`(4x-5)*(x+1)`

`=4x^2+4x*1-5*x-5`

`=4x^2+4x-5x-5`

`=4x^2-x-5=`

`x_(1,2)=(-(-1)+-sqrt((-1)^2-4(4(-5))))/(2*4)`

`x_(1,2)=(1+-sqrt(1+80))/8`

`x_(1,2)=(1+-9)/8`

`x_1=5/4`

`x_2=-1`