Answer: 0.074
Step-by-step explanation:
Given : The total number of U.S. adults in the sample = 800
The number of U.S. adults dine out at a restaurant more than once a week = 216
The probability for an adult dine out more than once per week :-
[tex]\dfrac{218}{800}[/tex]
If another person is selected without replacement ,then
Total adults left = 799
Total adults left who dine out at a restaurant more than once a week = 217
The probability for the second person dine out more than once per week :-
[tex]\dfrac{217}{799}[/tex]
Now, the probability that both adults dine out more than once per week :-
[tex]\dfrac{218}{800}\times\dfrac{217}{799}=0.074[/tex]
