Respuesta :
Answer:
t-distribution should be used to construct a confidence interval.
Step-by-step explanation:
We are given that a random sample of 18 families, the average weekly food expense was $95.60 with a sample standard deviation of $22.50.
We have to determine whether a normal distribution (Z values) or a t- distribution should be used or whether neither of these can be used to construct a confidence interval.
Since in this question we are provided with;
Sample average weekly food expense, [tex]\bar X[/tex] = $95.60
Sample standard deviation, s = $22.50
Sample of families, n = 18
The distribution that we will use here to construct a confidence interval will be t-distribution because in the question we don't know anything about population standard deviation [tex](\sigma)[/tex] .
Normal distribution is used when we know population standard deviation [tex](\sigma)[/tex].
So, the pivotal quantity for confidence interval that will be used is One-sample t-test statistics;
P.Q. = [tex]\frac{\bar X -\mu}{\frac{s}{\sqrt{n} } }[/tex] ~ [tex]t_n_-_1[/tex]
Therefore, t-distribution should be used to construct a confidence interval.
