Exercise
ABy Admin
May 08'23
Answer
Solution: C
Let [math]X[/math] number of patients tested, which is geometrically distributed with constant “success” probability, say [math]p[/math].
[[math]]
\operatorname{P}[X \geq n] = \operatorname{P}[\textrm{first n-1 patients do not have apnea}] = (1-p)^{n-1}.
[[/math]]
Therefore,
[[math]]
\begin{align*}
r = \operatorname{P}[X \geq 4] &= (1-p)^3 \\
\operatorname{P}[X \geq 12 | X \geq 4] &= \frac{\operatorname{P}[X \geq 12]}{\operatorname{P}[X \geq 4]}\\
&= \frac{(1-p)^{11}}{(1-p)^3}\\
&= [(1-p)^3]^{\frac{8}{3}} \\
&= r^{\frac{8}{3}}.
\end{align*}
[[/math]]
Copyright 2023. The Society of Actuaries, Schaumburg, Illinois. Reproduced with permission.