1999 AIME Problems/Problem 13

Problem

Forty teams play a tournament in which every team plays every other team exactly once. No ties occur, and each team has a $50 \%$ chance of winning any game it plays. The probability that no two teams win the same number of games is $\frac mn,$ where $m_{}$ and $n_{}$ are relatively prime positive integers. Find $\log_2 n.$

Solution

Now one team must win 0 games, one team must win one game, ... , and one team must win all 39 games it plays. Now let's assume that team one wins all games, ... , and team 40 loses all games. The probability that team 40 wins all games is $\dfrac{1}{2^{39}}$ . Now that team 39 has lost it's game, it has a probability of $\dfrac{1}{2^{38}}$ of winning all of the other games. So on, until we get

$\frac{1}{2^{39+38+\cdots+1}} = \frac{1}{2^{780}}$

But that was assuming that we knew which team got what score. Now we need to account of the permutations of each team:

$\dfrac{40!}{2^{780}}$

Now we need to find how many $2$ 's there are in $40!$ . There are

$\left\lfloor \dfrac{40}{2} \right\rfloor +\left\lfloor\dfrac{40}{4} \right\rfloor +\left\lfloor\dfrac{40}{8} \right\rfloor +\left\lfloor\dfrac{40}{16} \right\rfloor +\left\lfloor\dfrac{40}{32} \right\rfloor = 38$

Therefore,

$n=2^{780-38}=2^{742}$

and

$\log_{2} n =\boxed{742}$

1999 AIME (Problems • Answer Key • Resources)
Preceded by Problem 12	Followed by Problem 14
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1999 AIME Problems/Problem 13

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