Answer:
E) we will use t- distribution because is un-known,n<30
the confidence interval is (0.0338,0.0392)
Step-by-step explanation:
Step:-1
Given sample size is n = 23<30 mortgage institutions
The mean interest rate 'x' = 0.0365
The standard deviation 'S' = 0.0046
the degree of freedom = n-1 = 23-1=22
99% of confidence intervals [tex]t_{0.01} =2.82[/tex] (from tabulated value).
[tex]The mean value = 0.0365[/tex]
[tex]x±t_{0.01} \frac{S}{\sqrt{n-1} }[/tex]
[tex]0.0365±2.82 \frac{0.0046}{\sqrt{23-1} }[/tex]
[tex]0.0365±2.82 \frac{0.0046}{\sqrt{22} }[/tex]
[tex]0.0365±2.82 \frac{0.0046}{4.690 }[/tex]
using calculator
[tex]0.0365±0.00276[/tex]
Confidence interval is
[tex](0.0365-0.00276,0.0365+0.00276)[/tex]
[tex](0.0338,0.0392)[/tex]
the mean value is lies between in this confidence interval
(0.0338,0.0392).
Answer:-
using t- distribution because is unknown,n<30,and the interest rates are not normally distributed.
