1995 AIME Problems/Problem 3

Revision as of 23:46, 15 June 2019 by Alexlikemath (talk | contribs) (Solution)

Problem

Starting at $(0,0),$ an object moves in the coordinate plane via a sequence of steps, each of length one. Each step is left, right, up, or down, all four equally likely. Let $p$ be the probability that the object reaches $(2,2)$ in six or fewer steps. Given that $p$ can be written in the form $m/n,$ where $m$ and $n$ are relatively prime positive integers, find $m+n.$

Solution 1

It takes an even number of steps for the object to reach $(2,2)$, so the number of steps the object may have taken is either $4$ or $6$.

If the object took $4$ steps, then it must have gone two steps N and two steps E, in some permutation. There are $\frac{4!}{2!2!} = 6$ ways for these four steps of occuring, and the probability is $\frac{6}{4^{4}}$.

If the object took $6$ steps, then it must have gone two steps N and two steps E, and an additional pair of moves that would cancel out, either N/S or W/E. The sequences N,N,N,E,E,S can be permuted in $\frac{6!}{3!2!1!} = 60$ ways. However, if the first four steps of the sequence are N,N,E,E in some permutation, it would have already reached the point $(2,2)$ in four moves. There are $\frac{4!}{2!2!}$ ways to order those four steps and $2!$ ways to determine the order of the remaining two steps, for a total of $12$ sequences that we have to exclude. This gives $60-12=48$ sequences of steps. There are the same number of sequences for the steps N,N,E,E,E,W, so the probability here is $\frac{2 \times 48}{4^6}$.

The total probability is $\frac{6}{4^4} + \frac{96}{4^6} = \frac{3}{64}$, and $m+n= \boxed{067}$.

Solution 2

Let's let the object wander for 6 steps so we get a constant denominator of $4^{6}$

First we count how many ways the object can end at 2,2, at the end of 6 steps. We will also count it even if we go to 2,2, and go back to 2,2. So, there are 2 ways for the object to end at 2,2. To go a permutation of R,R,R,U,U,L or a permutation of R,R,U,U,U,D. There are 60 ways to permute for each case, giving a total of 120 ways for the object to succeed and end at 2,2.

But, the object can also get to 2,2, then move away. That is also a possible way the object can move. So, there are 6 ways to get to 2,2 in 4 moves, then there are 16 ways the object can "move around", but 4 of the ways will return the object back to 2,2. Those ways were already counted in the first case, so we should only count 12 ways to prevent over-counting. Thus, there are $12*6 =$ 72 ways in the second case.

So, in all, there are 120+72 ways for the object to achieve it's goal of moving to 2,2. Put that over our denominator, we get $\frac{192}{4^{6}} = \frac{3}{4^{3}} = \frac{3}{64}$, in which adding the numerator and denominator get us an answer of $\boxed{067}$


- AlexLikeMath

See also

1995 AIME (ProblemsAnswer KeyResources)
Preceded by
Problem 2
Followed by
Problem 4
1 2 3 4 5 6 7 8 9 10 11 12 13 14 15
All AIME Problems and Solutions

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