Eight members of a chess club are having a tournament. In the first round every player will play a chess game against every other player. How many games will be in the first tou…

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asked Mar 19, 2018 46.9k views

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Azgolfer · Answer 1 · 2018-03-26T12:37:13+0000

now, if every member is playing the other 7, that means each game will have two players, so, seems to me is, how many Permutations of 2 from a group of 8?

$\bf _nP_r=\cfrac{n!}{(n-r)!}\quad \begin{cases} n=8\\ r=2 \end{cases}\implies _8P_2=\cfrac{8!}{(8-2)!}$

Eight members of a chess club are having a tournament. In the first round every player will play a chess game against every other player. How many games will be in the first tou…

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