Question

How do you solve `8x^2-5=-4x`?

Answer 1

`=> x approx 0.57915`

or

`x approx -1.07915`

Explanation:

`8x^2-5=-4x`

`=> 8x^2-5+4x=0`

`=> 8x^2+4x -5=0` --------(1)

using quadratic equation formula:

`=> x= (-b+- sqrt(b^2-4ac))/(2a)`

Substitute the corresponding values of a,b, and c from (1)

`=> x= (-4+- sqrt(4^2-4xx8xx(-5)))/(2xx8)`

`=> x= (-4+- sqrt(16+ 160))/(16)`

`=> x= (-4+- sqrt(176))/(16)`

`=> xapprox -4/16 +- 13.266499/16` ---truncating value of `sqrt(176)`

`=>xapprox -1/4 +- 13.2665/16`

`=> x approx - 0.25 +- 0.82915`

`=> x approx - 0.25 + 0.82915 or x approx - 0.25 - 0.82915`

`=> x approx 0.57915`

or

`x approx -1.07915`