Exercise


ABy Admin
May 04'23

Answer

Solution: A

Let N denote the number of warranty claims received. Then,

[[math]] 0.6 =\operatorname{P}( N =0) =e^{−c} ⇒ c =− \ln(0.6) =0.5108. [[/math]]

The expected yearly insurance payments are:

[[math]] \begin{align*} &5000[ \operatorname{P}( N = 2) + 2 \operatorname{P}( N = 3) + 3\operatorname{P}( N = 4) + \cdots] \\ &= 5000[ \operatorname{P}( N = 1)+ 2 \operatorname{P}( N = 2)+ 3\operatorname{P}( N = 3) + \cdots] − 5000[ \operatorname{P}( N = 1) + \operatorname{P}( N =+ 2) \operatorname{P}( N = 3) + \cdots] \\ &=5000 \operatorname{E}( N ) − 5000[1 − \operatorname{P}( N =0)] =5000(0.5108) − 5000(1 − 0.6) =554. \end{align*} [[/math]]

Copyright 2023. The Society of Actuaries, Schaumburg, Illinois. Reproduced with permission.

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