2012 AMC 10B Problem 20
Below is the professionally curated solution for Problem 20 of the 2012 AMC 10B, from LIVE by Po-Shen Loh. You can also try the full timed exam, view all 2012 AMC 10B solutions, or check the answer key.
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Difficulty rating: 1930
20.
Bernardo and Silvia play the following game. An integer between and inclusive is selected and given to Bernardo. Whenever Bernardo receives a number, he doubles it and passes the result to Silvia. Whenever Silvia receives a number, she adds to it and passes the result to Bernardo. The winner is the last person who produces a number less than
Let be the smallest initial number that results in a win for Bernardo. What is the sum of the digits of
Solution:
Suppose was our initial number. Then, it becomes when given to Silvia, and when given to Bernardo. Repeatedly doing this can yield that it eventually becomes when given to Silvia and when given to Bernardo. Any more iterations makes the number greater than
The number given to Silvia must be below and the number Silvia makes is greater than so
Therefore, This makes so As such, the sum of the digits of is
Thus, the correct answer is A .
Problem 20 in Other Years
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