Exercise
May 07'23
Answer
Solution: A
The probability that Rahul examines exactly n policies is 0.1(0.9) n−1 . The probability that Toby examines more than n policies is 0.8n . The required probability is thus
[[math]]
\sum_{n=1}^{\infty} 0.1 (0.9)^{n-1}(0.8)^n = \frac{1}{9} \sum_{n=1}^{\infty} 0.72^n = \frac{0.72}{9(1-0.72)} = 0.2857.
[[/math]]
An alternative solution begins by imagining Rahul and Toby examine policies simultaneously until at least one of the finds a claim. At each examination there are four possible outcomes:
- Both find a claim. The probability is 0.02.
- Rahul finds a claim and Toby does not. The probability is 0.08.
- Toby finds a claim and Rahul does not. The probability is 0.18
- Neither finds a claim. The probability is 0.72.
Conditioning on the examination at which the process ends, the probability that it ends with Rahul being the first to find a claim (and hence needing to examine fewer policies) is 0.08/(0.02+ 0.08 + 0.18) = 8/28 = 0.2857.
Copyright 2023. The Society of Actuaries, Schaumburg, Illinois. Reproduced with permission.