Suppose we roll six fair dice, how many ways can four distinct numbers show up?
Count the number of ways of four distinct numbers showing up when six dice are rolled
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2The number of ways doesn't depend on the dice being fair. – 2011-12-09
1 Answers
I'll assume that you mean six-sided dice.
There are $\binom64$ ways of choosing the $4$ distinct numbers. They can either appear $3,1,1,1$ times or $2,2,1,1$ times. In the first case, there are $4$ choices of the number appearing thrice and $6\cdot5\cdot4$ choices for the positions. In the second case, there are $6$ choices for the two numbers appearing twice and $6\cdot5\cdot\binom42$ choices for the positions. Thus, the total is
$\binom64\left(4\cdot6\cdot5\cdot4+6\cdot6\cdot5\cdot\binom42\right)=15\cdot6\cdot5\cdot(16+36)=23400\;.$
Thus, the probability of this happening is $23400/6^6=23400/46656\approx50\%$.
The corresponding probabilities for the other numbers of distinct numbers are:
$ \begin{eqnarray} p(1)&=&\binom61/6^6\approx0.01\%\;,\\ p(2)&=&\binom62(2^6-2)/6^6\approx2\%\;,\\ p(3)&=&\binom63\left(3\cdot6\cdot5+3!\cdot6\cdot\binom52+\binom62\binom42\right)/6^6\approx23\%\;,\\ p(5)&=&\binom65\cdot5\cdot6\cdot5\cdot4\cdot3/6^6\approx23\%\;,\\ p(6)&=&\binom666!/6^6\approx2\%\;. \end{eqnarray} $
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0Really nice. Thank you. – 2011-12-09