Step-by-step explanation:
Here, given:
The probability of having 0 dental checkup = 0.3
The probability of having 1 dental checkup = 0.6
The probability of having 2 dental checkup = 0.1
Number of people chosen at random = 7
So, the number of ways 2, 4 and 1 checkup are : [tex](\frac{7!}{2! \times 4! \times 1!} )[/tex]
Now, the combined probability that two will have no checkups, four will have one checkup, and one will have two checkups in the next year
= [tex](\frac{7!}{2! \times 4! \times 1!} ) \times (0.3)^2 \times (0.6)^4 \times (0.1)^1 = 0.1224[/tex]
Hence, the required probability is 0.1224.
