2013 AMC 10A Problem 21
Below is the professionally curated solution for Problem 21 of the 2013 AMC 10A, from LIVE by Po-Shen Loh. You can also try the full timed exam, view all 2013 AMC 10A solutions, or check the answer key.
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Difficulty rating: 2300
21.
A group of pirates agree to divide a treasure chest of gold coins among themselves as follows. The pirate to take a share takes of the coins that remain in the chest. The number of coins initially in the chest is the smallest number for which this arrangement will allow each pirate to receive a positive whole number of coins. How many coins does the pirate receive?
Solution:
Work backward. If coins remain for the th pirate, then before pirate took a share, the chest had times as many coins as it had afterward.
Therefore the initial number of coins is .
Since , the smallest that makes the initial number an integer is .
Thus, the th pirate receives coins, and D is the correct answer.
Problem 21 in Other Years
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