Exercise
ABy Admin
May 13'23
Answer
Key: C
[math]\operatorname{E}(N)=r \beta=0.4[/math]
[math]\operatorname{Var}(N)=r \beta(1+\beta)=0.48[/math]
[math]\operatorname{E}(Y)=\theta /(\alpha-1)=500[/math]
[math]\operatorname{Var}(Y)=\frac{\theta^{2} \alpha}{(\alpha-1)^{2}(\alpha-2)}=750,000[/math]
Therefore, [math]\operatorname{E}(X)=0.4(500)=200[/math]
[math]\operatorname{Var}(X)=0.4(750,000)+0.48(500)^{2}=420,000[/math].
The full credibility standard is [math]n=\left(\frac{1.645}{0.05}\right)^{2} \frac{420,000}{200^{2}}=11,365, \mathrm{Z}=\sqrt{2,500 / 11,365}=0.47[/math].
Copyright 2023. The Society of Actuaries, Schaumburg, Illinois. Reproduced with permission.