Answer
$-\dfrac{\pi}{2}$
Work Step by Step
$y = \sin^{-1}{x} \hspace{15pt} \to \hspace{15pt} x = \sin{y}$
$\text{where } \hspace{15pt} -1 \leq x \leq 1 \hspace{15pt} \text{and} \hspace{15pt} -\dfrac{\pi}{2} \leq y \leq \dfrac{\pi}{2}$
Let $\theta = \sin^{-1} {(-1)} \hspace{20pt} -\dfrac{\pi}{2} \leq \theta \leq \dfrac{\pi}{2}$
Since $\theta = \sin^{-1} {(-1)}$, then
$\sin{\theta} = -1$
Referring to Table 1 on page 466:
The only angle in the interval $\left[-\dfrac{\pi}{2},\dfrac{\pi}{2} \right]$ whose sine is $-1$ is $-\dfrac{\pi}{2}$.
Therefore, $\sin^{-1} {(-1)} = -\dfrac{\pi}{2}$.