1998 AIME Problems/Problem 9
Problem
Two mathematicians take a morning coffee break each day. They arrive at the cafeteria independently, at random times between 9 a.m. and 10 a.m., and stay for exactly mintues. The probability that either one arrives while the other is in the cafeteria is and where and are positive integers, and is not divisible by the square of any prime. Find
Solution
Solution 1
Let the two mathematicians be and . Consider plotting the times that they are on break on a coordinate plane and shading in the places where they would be there at the same time as such.
We can count the area that we don't want in terms of and solve:
So the answer is .
Solution 2
We draw a number line representing the time interval. If mathematicion comes in at the center of the time period, then the two mathematicions will meet if comes in somewhere between minutes before and after comes (a total range of minutes). However, if comes into the cafeteria in the first or last minutes, then the range in which is reduced to somewhere in between and .
We know try to find the weighted average of the chance that the two meet. In the central minutes, and have to enter the cafeteria within minutes of each other; so if we fix point then has a probability of meeting.
In the first and last minutes, the probability that the two meet ranges from to , depending upon the location of with respect to the endpoints. Intuitively, the average probability will occur at .
So the weighted average is:
Solving this quadratic, we get two roots, . However, , so we discard the greater root; and thus our answer .
See also
1998 AIME (Problems • Answer Key • Resources) | ||
Preceded by Problem 8 |
Followed by Problem 10 | |
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