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2001 AIME II Problems/Problem 3: Difference between revisions

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== Problem ==
== Problem ==
Given that
Given that
<cmath>
<cmath>
\begin{align*}x_{1}&=211,\\
\begin{align*}x_{1}&=211,\\
Line 8: Line 9:
x_{n}&=x_{n-1}-x_{n-2}+x_{n-3}-x_{n-4}\ \text{when}\ n\geq5, \end{align*}
x_{n}&=x_{n-1}-x_{n-2}+x_{n-3}-x_{n-4}\ \text{when}\ n\geq5, \end{align*}
</cmath>
</cmath>
find the value of <math>x_{531}+x_{753}+x_{975}</math>.
find the value of <math>x_{531}+x_{753}+x_{975}</math>.


== Solution ==
== Solution ==
<math>x_5=x_4-x_3+x_2-x_1</math>
We find that <math>x_5 = 267</math> by the recursive formula. Summing the [[recursion]]s
 
<cmath>\begin{align*}
x_{n}&=x_{n-1}-x_{n-2}+x_{n-3}-x_{n-4} \\
x_{n-1}&=x_{n-2}-x_{n-3}+x_{n-4}-x_{n-5}
\end{align*}</cmath>
 
yields <math>x_{n} = -x_{n-5}</math>. Thus <math>x_n = (-1)^k x_{n-5k}</math>. Since <math>531 = 106 \cdot 5 + 1,\ 753 = 150 \cdot 5 + 3,\ 975 = 194 \cdot 5 + 5</math>, it follows that
 
<cmath>x_{531} + x_{753} + x_{975} = (-1)^{106} x_1 + (-1)^{150} x_3 + (-1)^{194} x_5 = 211 + 420 + 267 = \boxed{898}.</cmath>
 
== Solution Variant ==
The recursive formula suggests telescoping. Indeed, if we add <math>x_n</math> and <math>x_{n-1}</math>, we have <math>x_n + x_{n-1} = (x_{n-1} - x_{n-2} + x_{n-3} - x_{n-4}) + (x_{n-2} - x_{n-3} + x_{n-4} - x_{n-5}) = x_{n-1} - x_{n-5}</math>.
 
Subtracting <math>x_{n-1}</math> yields <math>x_n = -x_{n-5} \implies x_n = -(-(x_{n-10})) = x_{n-10}</math>.
 
Thus,
 
<cmath>x_{531} + x_{753} + x_{975} = x_1 + x_3 + x_5 = x_1 + x_3 + (x_4 - x_3 + x_2 - x_1) = x_2 + x_4 = 375 + 523 = \boxed{898}.</cmath>
 
Notice that we didn't need to use the values of <math>x_1</math> or <math>x_3</math> at all.


<math>x_6=x_4-x_3+x_2-x_1-x_4+x_3-x_2=-x_1</math>


<math>x_7=-x_1-x_4+x_3-x_2+x_1+x_4-x_3=-x_2</math>
==Non-Rigorous Solution==


<math>x_8=-x_2+x_1+x_4-x_3+x_2-x_1-x_4=-x_3</math>
Calculate the first few terms:


<math>x_9=-x_3+x_2-x_1-x_4+x_3-x_2+x_1=-x_4</math>
<cmath>211,375,420,523,267,-211,-375,-420,-523,\dots</cmath>


And it cycles back to <math>x_{11}=x_1</math>
At this point it is pretty clear that the sequence is periodic with period 10 (one may prove it quite easily like in solution 1) so our answer is obviously <math>211+420+267=\boxed{898}</math>


Therefore, <math>x_{y}=x_{y-10}</math>, so
~Dhillonr25
<cmath>
 
\begin{align*}x_{531}+x_{753}+x_{975}=x_1+x_3+x_5&=x_1+x_3+x_4-x_3+x_2-x_1\\
== Video Solution by OmegaLearn ==
&=x_4+x_2=523+420=\boxed{943}\end{align*}
https://youtu.be/lH-0ul1hwKw?t=870
</cmath>
 
~ pi_is_3.14


== See also ==
== See also ==
{{AIME box|year=2001|n=II|num-b=2|num-a=4}}
{{AIME box|year=2001|n=II|num-b=2|num-a=4}}
{{MAA Notice}}

Latest revision as of 00:28, 12 November 2022

Problem

Given that

\begin{align*}x_{1}&=211,\\ x_{2}&=375,\\ x_{3}&=420,\\ x_{4}&=523,\ \text{and}\\ x_{n}&=x_{n-1}-x_{n-2}+x_{n-3}-x_{n-4}\ \text{when}\ n\geq5, \end{align*}

find the value of $x_{531}+x_{753}+x_{975}$.

Solution

We find that $x_5 = 267$ by the recursive formula. Summing the recursions

\begin{align*} x_{n}&=x_{n-1}-x_{n-2}+x_{n-3}-x_{n-4} \\ x_{n-1}&=x_{n-2}-x_{n-3}+x_{n-4}-x_{n-5} \end{align*}

yields $x_{n} = -x_{n-5}$. Thus $x_n = (-1)^k x_{n-5k}$. Since $531 = 106 \cdot 5 + 1,\ 753 = 150 \cdot 5 + 3,\ 975 = 194 \cdot 5 + 5$, it follows that

\[x_{531} + x_{753} + x_{975} = (-1)^{106} x_1 + (-1)^{150} x_3 + (-1)^{194} x_5 = 211 + 420 + 267 = \boxed{898}.\]

Solution Variant

The recursive formula suggests telescoping. Indeed, if we add $x_n$ and $x_{n-1}$, we have $x_n + x_{n-1} = (x_{n-1} - x_{n-2} + x_{n-3} - x_{n-4}) + (x_{n-2} - x_{n-3} + x_{n-4} - x_{n-5}) = x_{n-1} - x_{n-5}$.

Subtracting $x_{n-1}$ yields $x_n = -x_{n-5} \implies x_n = -(-(x_{n-10})) = x_{n-10}$.

Thus,

\[x_{531} + x_{753} + x_{975} = x_1 + x_3 + x_5 = x_1 + x_3 + (x_4 - x_3 + x_2 - x_1) = x_2 + x_4 = 375 + 523 = \boxed{898}.\]

Notice that we didn't need to use the values of $x_1$ or $x_3$ at all.


Non-Rigorous Solution

Calculate the first few terms:

\[211,375,420,523,267,-211,-375,-420,-523,\dots\]

At this point it is pretty clear that the sequence is periodic with period 10 (one may prove it quite easily like in solution 1) so our answer is obviously $211+420+267=\boxed{898}$

~Dhillonr25

Video Solution by OmegaLearn

https://youtu.be/lH-0ul1hwKw?t=870

~ pi_is_3.14

See also

2001 AIME II (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

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

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