In a random sample of 28 families, the average weekly food expense was $95.60 with a standard deviation of $22.50. Determine whether a normal distribution or a t-distribution should be used or whether neither of these can be used to construct a confidence interval. Assume the distribution of weekly food expenses is normally shaped.

Answer:Step-by-step explanation:Given that in a random sample of 28 families, the average weekly food expense was $95.60 with a standard deviation of $22.50. Sample size =28<30For a normal distribution to be used, the condition is sample size should be atleast 30 and the sample is strictly drawn at random.Here we have sample size <30 hence t test can be used as the original distribution is normal.To construct confidence interval t -distribution should be used