Art of Problem Solving
Art of Problem Solving
AoPS Online
Math texts, online classes, and more
for students in grades 5-12.
Visit AoPS Online
Books for Grades 5-12 Online Courses
Beast Academy
Engaging math books and online learning
for students ages 6-13.
Visit Beast Academy
Books for Ages 6-13 Beast Academy Online
AoPS Academy
Small live classes for advanced math
and language arts learners in grades 2-12.
Visit AoPS Academy
Find a Physical Campus Visit the Virtual Campus

2018 AIME II Problems/Problem 2: Difference between revisions

← Older editNewer edit →
Coolgeo (talk | contribs)
100 edits
Randomdude10807 (talk | contribs)
editor
16 edits
Line 3: Line 3:
Let <math>a_{0} = 2</math>, <math>a_{1} = 5</math>, and <math>a_{2} = 8</math>, and for <math>n > 2</math> define <math>a_{n}</math> recursively to be the remainder when <math>4</math>(<math>a_{n-1}</math> <math>+</math> <math>a_{n-2}</math> <math>+</math> <math>a_{n-3}</math>) is divided by <math>11</math>. Find <math>a_{2018}</math> • <math>a_{2020}</math> • <math>a_{2022}</math>.
Let <math>a_{0} = 2</math>, <math>a_{1} = 5</math>, and <math>a_{2} = 8</math>, and for <math>n > 2</math> define <math>a_{n}</math> recursively to be the remainder when <math>4</math>(<math>a_{n-1}</math> <math>+</math> <math>a_{n-2}</math> <math>+</math> <math>a_{n-3}</math>) is divided by <math>11</math>. Find <math>a_{2018}</math> • <math>a_{2020}</math> • <math>a_{2022}</math>.


==Solution==
==Solution 1==


When given a sequence problem, one good thing to do is to check if the sequence repeats itself or if there is a pattern.
When given a sequence problem, one good thing to do is to check if the sequence repeats itself or if there is a pattern.
Line 27: Line 27:


Our answer is <math>7</math> • <math>2</math> • <math>8</math> <math>= \boxed{112}</math>.
Our answer is <math>7</math> • <math>2</math> • <math>8</math> <math>= \boxed{112}</math>.
==Solution 2 (Overkill) ==
Notice that the characteristic polynomial of this is <math>x^3-4x^2-4x-4\equiv 0\pmod{11}</math>
Then since <math>x\equiv1</math> is a root, using Vieta's formula, the other two roots <math>r,s</math> satisfy <math>r+s\equiv3</math> and <math>rs\equiv4</math>.
Let <math>r=7+d</math> and <math>s=7-d</math>.
We have <math>49-d^2\equiv4</math> so <math>d\equiv1</math>. We found that the three roots of the characteristic polynomial are <math>1,6,8</math>.
Now we want to express <math>a_n</math> in an explicit form as <math>a(1^n)+b(6^n)+c(8^n)\pmod{11}</math>.
Plugging in <math>n=0,1,2</math> we get
<math>(*)</math><math>a+b+c\equiv2,</math>
<math>(**)</math><math>a+6b+8c\equiv5,</math>
<math>(***)</math><math>a+3b+9c\equiv8</math>
<math>\frac{(***)-(*)}{2}</math><math>\implies b+4c\equiv3</math> and <math>(***)-(**)</math><math>\implies -3b+c\equiv3</math>
so <math>a\equiv6,</math> <math>b\equiv1,</math> and <math>c\equiv6</math>
Hence, <math>a_n\equiv 6+(6^n)+6(8^n)\equiv(2)^{-n\pmod{10}}+(2)^{3n-1\pmod{10}}-5\pmod{11}</math>
Therefore <math>a_{2018}\equiv4+8-5=7</math>
<math>a_{2020}\equiv1+6-5=2</math>
<math>a_{2022}\equiv3+10-5=8</math>
And the answer is <math>7\times2\times8=\boxed{112}</math>


==See Also==
==See Also==

Revision as of 11:33, 7 March 2020

Problem

Let $a_{0} = 2$, $a_{1} = 5$, and $a_{2} = 8$, and for $n > 2$ define $a_{n}$ recursively to be the remainder when $4$($a_{n-1}$ $+$ $a_{n-2}$ $+$ $a_{n-3}$) is divided by $11$. Find $a_{2018}$$a_{2020}$$a_{2022}$.

Solution 1

When given a sequence problem, one good thing to do is to check if the sequence repeats itself or if there is a pattern.

After computing more values of the sequence, it can be observed that the sequence repeats itself every 10 terms starting at $a_{0}$.

$a_{0} = 2$, $a_{1} = 5$, $a_{2} = 8$, $a_{3} = 5$, $a_{4} = 6$, $a_{5} = 10$, $a_{6} = 7$, $a_{7} = 4$, $a_{8} = 7$, $a_{9} = 6$, $a_{10} = 2$, $a_{11} = 5$, $a_{12} = 8$, $a_{13} = 5$

We can simplify the expression we need to solve to $a_{8}$$a_{10}$$a_{2}$.

Our answer is $7$$2$$8$ $= \boxed{112}$.

Solution 2 (Overkill)

Notice that the characteristic polynomial of this is $x^3-4x^2-4x-4\equiv 0\pmod{11}$

Then since $x\equiv1$ is a root, using Vieta's formula, the other two roots $r,s$ satisfy $r+s\equiv3$ and $rs\equiv4$.

Let $r=7+d$ and $s=7-d$.

We have $49-d^2\equiv4$ so $d\equiv1$. We found that the three roots of the characteristic polynomial are $1,6,8$.

Now we want to express $a_n$ in an explicit form as $a(1^n)+b(6^n)+c(8^n)\pmod{11}$.

Plugging in $n=0,1,2$ we get $(*)$$a+b+c\equiv2,$

$(**)$$a+6b+8c\equiv5,$

$(***)$$a+3b+9c\equiv8$

$\frac{(***)-(*)}{2}$$\implies b+4c\equiv3$ and $(***)-(**)$$\implies -3b+c\equiv3$

so $a\equiv6,$ $b\equiv1,$ and $c\equiv6$

Hence, $a_n\equiv 6+(6^n)+6(8^n)\equiv(2)^{-n\pmod{10}}+(2)^{3n-1\pmod{10}}-5\pmod{11}$

Therefore $a_{2018}\equiv4+8-5=7$

$a_{2020}\equiv1+6-5=2$

$a_{2022}\equiv3+10-5=8$

And the answer is $7\times2\times8=\boxed{112}$

See Also

2018 AIME II (ProblemsAnswer KeyResources)
Preceded by
Problem 1 		Followed by
Problem 3
1 2 3 4 5 6 7 8 9 10 11 12 13 14 15
All AIME Problems and Solutions

These problems are copyrighted © by the Mathematical Association of America, as part of the American Mathematics Competitions. Error creating thumbnail: File missing

Retrieved from "https://artofproblemsolving.com/wiki/index.php?title=2018_AIME_II_Problems/Problem_2&oldid=118865"