Re: here's another............
Originally posted by Saintly Devil
What is the probability that any one out of 3 people will be in the same group if they are to be randomly placed in one of four groups?
this includes if all three people are in the same group as well as if only two are in the same group.
ridiculously ambiguous. you can interpret this question in many different ways.
Assuming the people are called A, B, C
"any one of 3 people", does that mean any of A, B, C? or does it mean any particular person (e.g. just A)?
"be in the same group" as who? As any other person of the three?
I'll assume that it's any particular person (A only), and being in the same group as B and/or C.
i.e., we're checking for the possibility of the existence of the groups AB, AC, ABC.
Place A in a group first (doesn't matter which, the problem is symmetric)
Then the P(AB
OR ABC) = 1/4, since the chance of placing B in the same group as A is 1/4
Same reasoning why P(AC
OR ABC) = 1/4
But now you've double-counted P(ABC), so deduct one of this. P(ABC) = 1/16 since P(B in same group as A) = 1/4, and P(C in same group as A) = 1/4.
So, P(AB, AC, ABC) = 1/4 + 1/4 - 1/16 = 7/16
