Respuesta :
Answer:
We conclude that the residents of Wilmington, Delaware, have more income than the national average.
Step-by-step explanation:
We are given the following in the question:
Population mean, μ = $50,000
Sample mean, [tex]\bar{x}[/tex] = $60,000
Sample size, n = 10
Alpha, α = 0.05
Sample standard deviation, s = $10,000
a) First, we design the null and the alternate hypothesis
[tex]H_{0}: \mu = 50000\text{ dollars}\\H_A: \mu > 50000\text{ dollars}[/tex]
We use one-tailed(right) t test to perform this hypothesis.
c) Formula:
[tex]t_{stat} = \displaystyle\frac{\bar{x} - \mu}{\frac{s}{\sqrt{n}} }[/tex]
Putting all the values, we have
[tex]t_{stat} = \displaystyle\frac{60000 - 50000}{\frac{10000}{\sqrt{10}} } = 3.162[/tex]
Now, [tex]t_{critical} \text{ at 0.05 level of significance, 9 degree of freedom } = 1.833[/tex]
b) Rejection Rule:
If the calculated t-statistic is greater than the the critical value, we rect the null hypothesis.
Since,
[tex]t_{stat} > t_{critical}[/tex]
We fail to accept the null hypothesis and reject it.We accept the alternate hypothesis.
d) There is enough evidence to conclude that the residents of Wilmington, Delaware, have more income than the national average.
