Revision as of 23:19, 7 May 2023 by Admin (Created page with "'''Solution: E''' The profit variable <math>X</math> is normal with mean 100 and standard deviation 20. Then, <math display = "block"> \operatorname{P}( X ≤ 60 | X > 0 ) =...")
Exercise
ABy Admin
May 08'23
Answer
Solution: E
The profit variable [math]X[/math] is normal with mean 100 and standard deviation 20. Then,
[[math]]
\operatorname{P}( X ≤ 60 | X \gt 0 ) = \frac{\operatorname{P}(0 \lt X ≤ 60)}{\operatorname{P}( X \gt 0)} = \frac{\operatorname{P}(\frac{0-100}{20} \lt Z \leq \frac{60-100}{20})}{\operatorname{P}(Z \gt \frac{0-100}{20})} = \frac{F(-2)-F(-5)}{1-F(-5)}
[[/math]]
For the normal distribution, [math]F(–x) = 1 – F(x)[/math] and so the answer can be rewritten as
[[math]]
[1 – F(2) – 1 + F(5)]/[1 – 1 + F(5)] = [F(5) – F (2)]/F(5).
[[/math]]
Copyright 2023. The Society of Actuaries, Schaumburg, Illinois. Reproduced with permission.