Revision as of 22:54, 7 May 2023 by Admin (Created page with "'''Solution: B''' The months in question have 1, 1, 0.5, 0.5, and 0.5 respectively for their means. The sum of independent Poisson random variables is also Poisson, with the...")
Exercise
ABy Admin
May 07'23
Answer
Solution: B
The months in question have 1, 1, 0.5, 0.5, and 0.5 respectively for their means. The sum of independent Poisson random variables is also Poisson, with the parameters added. So the total number of accidents is Poisson with mean 3.5. The probability of two accidents is
[[math]]
\frac{e^{-3.5}3.5^2}{2!} = 0.185.
[[/math]]
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