Difference between revisions of "2012 AMC 10B Problems/Problem 15"

(Created page with "The total amount of games in the tournament is 5+4+3+2+1=15. Now, we see which numbers from 1-6 divide 15, and it seems 1,3, and 5 do. 5 is the largest number, so (D) 5 is the c...")
 
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The total amount of games in the tournament is 5+4+3+2+1=15.  
 
The total amount of games in the tournament is 5+4+3+2+1=15.  
 
Now, we see which numbers from 1-6 divide 15, and it seems 1,3, and 5 do. 5 is the largest number, so (D) 5 is the correct answer.
 
Now, we see which numbers from 1-6 divide 15, and it seems 1,3, and 5 do. 5 is the largest number, so (D) 5 is the correct answer.
 +
Here's a poorly done chart of 5 games won:
 +
_ _ _ _ _ _ _
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|  1 2 3 4 5 6 |
 +
|1X WL WL W |
 +
|2 L XW L WW|
 +
|3 WL X WL W|
 +
|4 LW LX W W|
 +
|5 WL W LX W|
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|6 L L  L L L X|
 +
-----------------
 +
The "x's" are for when it is where a team is versus itself, which cannot happen. The chart says that Team 6 has lost all of it's matches, which means that each team gets one win. Then, alternating Wins and Losses were tried. It shows that it is possible for 5 teams to tie for the same amount of wins, which in this case is 2 wins.

Revision as of 18:13, 12 March 2012

The total amount of games in the tournament is 5+4+3+2+1=15. Now, we see which numbers from 1-6 divide 15, and it seems 1,3, and 5 do. 5 is the largest number, so (D) 5 is the correct answer. Here's a poorly done chart of 5 games won:

_ _ _ _ _ _ _

| 1 2 3 4 5 6 | |1X WL WL W | |2 L XW L WW| |3 WL X WL W| |4 LW LX W W| |5 WL W LX W| |6 L L L L L X|


The "x's" are for when it is where a team is versus itself, which cannot happen. The chart says that Team 6 has lost all of it's matches, which means that each team gets one win. Then, alternating Wins and Losses were tried. It shows that it is possible for 5 teams to tie for the same amount of wins, which in this case is 2 wins.