This solution was sent in by Paul Jefferys, age 14,
Berkhamsted Collegiate School.
To solve this problem we can, without loss of generality, think of
the first player as being at the top of the draw. We MUST also
assume that the chances of winning any given match is 1/2. Then the
chance of the players meeting in the first round (with 2n
participants) is 1/(2n - 1). The chances of the two players being
drawn to meet in the second round is 2/(2n - 1), but the odds of
both players reaching the second round is 1/4. So the odds of
them meeting in the second round is half those of meeting in the
first round. Having observed all of this we now can find
the probability of meeting in the x-th round.
It is:
122(x-1)
2x-1(2n - 1)
=
1(2n - 1)2x-1
.
If there are 2n participants, then there will be n rounds,
so we can sum ALL the probabilities of meeting in a certain round,
and we get
12n - 1
æ ç
è
1/1 + 1/2 + 1/4 + ¼
12n-1
ö ÷
ø
=
12n - 1
æ ç
è
2-
12n-1
ö ÷
ø
=
12n - 1
æ ç
è
2n - 12n-1
ö ÷
ø
=
12n-1
.
So the probability of the two players meeting if there are 2n
players competing is 1/2n-1.