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Exercise

ABy Admin
May 08'23

Answer

Solution: B

Y is a normal random variable with mean 1.04(100) + 5 = 109 and standard deviation 1.04(25) = 26. The average of 25 observations has mean 109 and standard deviation 26/5 = 5.2. The requested probability is

[[math]] \begin{align*} \operatorname{P}(100 \lt \textrm{sample mean} \lt 110 ) &= \operatorname{P} \left( \frac{100-109}{5.2} = -1.73 \lt Z \lt \frac{110-109}{5.2} = 0.19 \right) \\ &= 0.5753 − (1 − 0.9582) = 0.5335. \end{align*} [[/math]]

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