Respuesta :
Answer:
The probability that the shopkeeper's annual profit will not exceed $100,000 is 0.2090.
Step-by-step explanation:
According to the Central Limit Theorem if we have a population with mean μ and standard deviation σ and we select appropriately huge random samples (n ≥ 30) from the population with replacement, then the distribution of the sum of values of X, i.e ∑X, will be approximately normally distributed. Â
Then, the mean of the distribution of the sum of values of X is given by, Â
 [tex]\mu_{x}=n\mu[/tex]
And the standard deviation of the distribution of the sum of values of X is given by, Â
 [tex]\sigma_{x}=\sqrt{n}\sigma[/tex]
The information provided is:
μ = $970
σ = $129
n = 102
Since the sample size is quite large, i.e. n = 102 > 30, the Central Limit Theorem can be used to approximate the distribution of the shopkeeper's annual profit.
Then,
[tex]\sum X\sim N(\mu_{x}=98940,\ \sigma_{x}=1302.84)[/tex]
Compute the probability that the shopkeeper's annual profit will not exceed $100,000 as follows:
[tex]P (\sum X \leq 100,000) =P(\frac{\sum X-\mu_{x}}{\sigma_{x}} <\frac{100000-98940}{1302.84})[/tex]
               [tex]=P(Z<0.81)\\=1-0.79103\\=0.20897\\\approx0.2090[/tex]
*Use a z-table for the probability.
Thus, the probability that the shopkeeper's annual profit will not exceed $100,000 is 0.2090.
