Answer:
(0.1392,0.1466)
Step-by-step explanation:
Given that a survey given to consumers leaving a supermarket three days before Thanksgiving asked whether turkey would be part of the Thanksgiving meal
People surveyed = 182
claimed not eating turkey = 26
Sample proportion = [tex]\frac{26}{182} \\=0.1429[/tex]
Std error =[tex]\sqrt{\frac{pq}{n} } \\=0.0260[/tex]
Margin of error = 1.96*SE=[tex]0.00378[/tex]
Confidence interval = [tex](0.1429-0.0037,0.1429+0.0037)\\=(0.1392,0.1466)[/tex]
