Answer:
15
Explanation:
Lets say that P passengers are infected with the virus.
We want the probability of at least one of the ten passengers to be infected, so first we need to calculate the probability of no one of the 10 passengers to be infected, and make one minus this probability (the opposite of none being infected is that at least one person is infected)
picking the first person, the probability of this person not being infected is (60-P)/60
then, picking the second person, the probability is (59-P)/59 and so on
doing this for 10 passengers, the probability of at least one passengers of the 10 being infected is 1 - [(60-P)/60]*[(59-P)/59]*...*[(51-P)/51]
This probability needs to be greater than or equal to 0.95, so:
1 - [(60-P)/60]*[(59-P)/59]*...*[(51-P)/51] >= 0.95
[(60-P)/60]*[(59-P)/59]*...*[(51-P)/51] <= 0.05
For P = 1, we have
59*58*...*50/(60*59*...*51) = 50/60 = 0.8333
For P=2, we multiply the probability found with P=1 by 49/59, then for P=3, multiply the previous result by 48/58, and so on until we find a value lesser or equal than 0.05
For P = 10, we have
50*49*...*41/(60*59*...*51) = 0.1362
For P = 14, we have
46*44*...*37/(60*59*...*51) = 0.0541
For P = 15, we have
45*44*...*36/(60*59*...*51) = 0.0423
So, the value of P we want is 15