Answer
a. $-\dfrac{4}{3}$
Work Step by Step
$\sin{\theta} = \dfrac{y}{r} = \dfrac{4}{5}$
$\therefore y = 4 \hspace{20pt} r =5$
$x^2 = r^2-y^2 \\ x = \pm \sqrt{r^2-y^2} \\ = \pm \sqrt{5^2-4^2}$
$x = \pm 3$
$\because \theta$ terminates in $QII$
$\therefore x = -3$
$\tan{\theta} = \dfrac{y}{x} = \boxed{-\dfrac{4}{3}}$
