Question

Find the value of k so that the remainder is 1 when x^3+5x^2+kx-8 is divided by (x-3)
K=

Answer 1

By the remainder theorem, the remainder upon dividing
`x^3+5x^2+kx-8` by
`x-3` is given by the value of this expression when x = 3 :

`3^3 + 5\cdot3^2 + 3k - 8 = 1`

Solve for k :

`27 + 45 + 3k - 8 = 1 \\\\ 3k = -63 \\\\ \boxed{k = -21}`