Answer: 1.509
Step-by-step explanation:
The formula of Margin of Error for (n<30):-
[tex]E=t_{\alpha/2}\dfrac{\sigma}{\sqrt{n}}[/tex]
Given : Sample size : n= 22
Level of confidence = 0.99
Significance level : [tex]\alpha=1-0.99=0.01[/tex]
Using the t-distribution table ,
Critical value : [tex]t_{n-1, \alpha/2}=t_{21,0.005}= 2.831[/tex]
Standard deviation: [tex]\sigma=\text{ 2.5 dollars }[/tex]
Then, we have
[tex]E=( 2.831)\dfrac{2.5}{\sqrt{22}}\approx1.509[/tex]
Hence, the margin of error for a 99% confidence interval for the population mean =1.509
