Difference between revisions of "2022 AMC 12A Problems/Problem 16"

(Solution 1a (Alt. Pell))
 
(28 intermediate revisions by 15 users not shown)
Line 1: Line 1:
 
==Problem==
 
==Problem==
  
A \emph{triangular number} is a positive integer that can be expressed in the form <math>t_n = 1+2+3+\cdots+n</math>, for some positive integer <math>n</math>. The three smallest triangular numbers that are also perfect squares are
+
A <math>\emph{triangular number}</math> is a positive integer that can be expressed in the form <math>t_n = 1+2+3+\cdots+n</math>, for some positive integer <math>n</math>. The three smallest triangular numbers that are also perfect squares are
 
<math>t_1 = 1 = 1^2</math>, <math>t_8 = 36 = 6^2</math>, and <math>t_{49} = 1225 = 35^2</math>. What is the sum of the digits of the fourth smallest triangular number that is also a perfect square?
 
<math>t_1 = 1 = 1^2</math>, <math>t_8 = 36 = 6^2</math>, and <math>t_{49} = 1225 = 35^2</math>. What is the sum of the digits of the fourth smallest triangular number that is also a perfect square?
  
==Solution==
+
<math>\textbf{(A) } 6 \qquad \textbf{(B) } 9 \qquad \textbf{(C) } 12 \qquad \textbf{(D) } 18 \qquad \textbf{(E) } 27 </math>
  
 +
==Solution 1(Pell Equation)==
 
We have <math>t_n = \frac{n (n+1)}{2}</math>.
 
We have <math>t_n = \frac{n (n+1)}{2}</math>.
 
If <math>t_n</math> is a perfect square, then it can be written as
 
If <math>t_n</math> is a perfect square, then it can be written as
Line 11: Line 12:
 
where <math>k</math> is a positive integer.
 
where <math>k</math> is a positive integer.
  
Thus, <math>n (n+1) = 2 k^2</math>.
+
Thus, <math>n (n+1) = 2 k^2</math>. Rearranging, we get <math>(2n+1)^2-2(2k)^2=1</math>, a Pell equation. So <math>\frac{2n+1}{2k}</math> must be a truncation of the continued fraction for <math>\sqrt{2}</math>:
  
Because <math>n</math> and <math>n+1</math> are relatively prime, the solution must be in the form of <math>n = u^2</math> and <math>n+1 = 2 v^2</math>, or <math>n = 2 v^2</math> and <math>n+1 = u^2</math>, where in both forms, <math>u</math> and <math>v</math> are relatively prime and <math>u</math> is odd.
+
<cmath>\begin{eqnarray*}
 +
1+\frac12&=&\frac{2\cdot1+1}{2\cdot1}\\
 +
1+\frac1{2+\frac1{2+\frac12}}&=&\frac{2\cdot8+1}{2\cdot6}\\
 +
1+\frac1{2+\frac1{2+\frac1{2+\frac1{2+\frac12}}}}&=&\frac{2\cdot49+1}{2\cdot35}\\
 +
1+\frac1{2+\frac1{2+\frac1{2+\frac1{2+\frac1{2+\frac1{2+\frac12}}}}}}&=&\frac{2\cdot288+1}{2\cdot204}
 +
\end{eqnarray*}</cmath>
  
The four smallest feasible <math>n</math> in either of these forms are <math>n = 1, 8, 49, 288</math>.
+
Therefore, <math>t_{288} = \frac{288\cdot289}{2} = 204^2 = 41616</math>, so the answer is <math>4+1+6+1+6=\boxed{\textbf{(D) 18}}</math>.
  
Therefore, <math>t_{288} = \frac{288 \cdot 289}{2} = 41616</math>.
 
  
Therefore, the answer is <math>4+1+6+1+6=\boxed{\textbf{(D) 18}}</math>.
+
- Steven Chen (Professor Chen Education Palace, www.professorchenedu.com)  
  
~Steven Chen (Professor Chen Education Palace, www.professorchenedu.com)
+
Edited by wzs26843545602
 +
Edited by dad
 +
 
 +
===Solution 1a (Alt. Pell)===
 +
 
 +
As in Solution 1, we find that <math>(2n+1)^2-8k^2=1</math>. Let <math>q=2n+1</math>; applying the difference of squares, we see that <math>(q-2\sqrt2k)(q+2\sqrt2k)=1</math>. For this Pell equation, note that <math>q+2\sqrt2k</math> and <math>q-2\sqrt2k</math> are both algebraic integers that are conjugates of each other. WLOG let <math>z=q-2\sqrt2k</math> so that <math>\overline z=q+2\sqrt2k</math>; we know that <math>z\overline z=1</math>. It is clear that <math>\overline{ab}=\overline a\overline b</math>, and it immediately follows that <math>\left(z^n\right)\overline{\left(z^n\right)}=1</math>. In essence, for a solution <math>z</math> to <math>z\overline z=1</math>, then any integer power of <math>z</math> is also a solution. This is particularly useful in this problem: we are given that <math>n=1\implies q=3</math> and <math>k=1</math> is a solution, so <math>z=3-2\sqrt2</math>. From our result, we know that <math>z^2=\left(3-2\sqrt2\right)^2=17-2\sqrt2\cdot6</math> is also a solution; this particular solution is <math>n=8</math> and <math>k=6</math>, which is the second smallest desired number. Similarly, <math>z^3</math> gives us the third-smallest desired number, so <math>z^4</math> must give us our desired answer. We can calculate: <math>z^4=\left(17-2\sqrt2\cdot6\right)^2=289+288-2\cdot17\cdot6\cdot2\sqrt2=577-2\sqrt2\cdot204</math>. This lets <math>n=288</math> and <math>k=204</math>; we thus know that <math>T_{288}=204^2=41616</math>, which has digit sum <math>\boxed{\textbf{(D) }18}</math>. QED. <math>\Box</math>
 +
 
 +
~Technodoggo
 +
 
 +
==Solution 2 (Bash)==
 +
 
 +
As mentioned above, <math>t_n = \frac{n (n+1)}{2}</math>. If <math>t_n</math> is a perfect square, one of two things must occur when the fraction is split into a product. Either <math>\frac{n}{2}</math> and <math>n+1</math> must both be squares, or <math>n</math> and <math>\frac{n+1}{2}</math> must both be squares, and thus the search for the next perfect square triangular number can be narrowed down by testing values of <math>n</math> that are close to or are perfect squares. After some work, we reach <math>n = 288</math>, <math>1</math> less than <math>289</math>, and <math>t_{288} = \frac{288\cdot289}{2} = 144 \cdot 289 = 41616</math>. This product is a perfect square, and thus the sum of the digits of the fourth smallest perfect square triangular number is therefore <math>4+1+6+1+6=\boxed{\textbf{(D) 18}}</math>.
 +
 
 +
~kingme271
 +
 
 +
==Solution 3==
 +
According to the problem, we want to find integer <math>p</math> such <math>\frac{n(n+1)}{2}=p^2</math>, after expanding, we have <math>n^2+n=2p^2, 4n^2+4n=8p^2, (2n+1)^2-8p^2=1</math>, we call <math>2n+1=q</math>, the equation becomes <math>q^2-8p^2=1</math>, obviously <math>(q,p)=(3,1)</math> is the elementary solution for this pell equation, thus the forth smallest solution set <math>q_4+2\sqrt{2}p_4=(3+2\sqrt{2})^4=577+408\sqrt{2}</math>, which indicates <math>p=204, p^2=41616</math> leads to <math>\boxed{18}</math>
 +
 
 +
~bluesoul
 +
 
 +
==Solution 4==
 +
If <math>n \choose 2</math> is a square, then <math>{(2n-1)^2 \choose 2}</math> is also a square. We can prove this quite simply:
 +
 
 +
<cmath>{(2n-1)^2 \choose 2}</cmath>
 +
<cmath> = \frac{(2n-1)^2 \cdot ((2n-1)^2 - 1)}{2}</cmath>
 +
<cmath> = \frac{(2n-1)^2 \cdot (2n \cdot (2n - 2))}{2}</cmath>
 +
<cmath> = (2n-1)^2 \cdot 4{n \choose 2}.</cmath>
 +
 
 +
Therefore, <math>{(2 \cdot 9 - 1)^2 \choose 2}</math> is a square. Note that <math>T_n = {n+1 \choose 2}</math>. We can easily check all smaller possibilities using a bit of casework, and they don't work. Our solution is thus <math>{289 \choose 2} = 204^2 = 41616</math>, and so the answer is <math>\boxed{18}</math>.
 +
 
 +
~mathboy100
 +
==Solution 5==
 +
We want to find integer <math>n_i</math> and <math>m_i</math> such that <math>t_{n_i} =\frac{n_i (n_i + 1)}{2}=m_i^2, n_0 = 0.</math>
 +
 
 +
We use the formula <math>\sqrt{n_{i+1}} = \sqrt{2n_i} + \sqrt{n_i + 1}</math> and get
 +
 
 +
<cmath>n_1 = ( \sqrt{2n_0} + \sqrt{n_0 + 1})^2 = (0+1)^2 = 1, </cmath>
 +
<cmath>n_2= ( \sqrt{2n_1} + \sqrt{n_1 + 1})^2 = ( \sqrt{2} + \sqrt{1 + 1})^2 = 8, </cmath>
 +
<cmath>n_3= ( \sqrt{2n_2} + \sqrt{n_2 + 1})^2 = ( \sqrt{16} + \sqrt{8 + 1})^2 = 49,</cmath>
 +
<cmath>n_4 = ( \sqrt{2n_3} + \sqrt{n_3 + 1})^2 = ( \sqrt{98} + \sqrt{49 + 1})^2 =  ((7 + 5)\sqrt{2})^2 = 288, </cmath>
 +
<cmath>n_5 = ( \sqrt{2n_4} + \sqrt{n_4 + 1})^2 = ( \sqrt{576} + \sqrt{289})^2 =  (24 + 17)^2 = 1681,</cmath>
 +
<cmath>n_6 = ( \sqrt{2n_5} + \sqrt{n_5 + 1})^2 = ( 41\sqrt{2} + \sqrt{1682})^2 =  ((41 + 29)\sqrt{2})^2 = 9800,... </cmath>
 +
Therefore, <math>t_{n_4} = t_{288} = \frac{288\cdot289}{2} = 41616 \implies 4+1+6+1+6=\boxed{\textbf{(D) 18}}</math>
 +
 
 +
*[[Pell's equation (simple solutions)]]
 +
 
 +
'''vladimir.shelomovskii@gmail.com, vvsss'''
 +
 
 +
==Solution 6(Fast and Simple)==
 +
This is an easy one to tackle by just noticing a pattern. Write out all the perfect squares before 300, and then notice that 4 and 9 are what are the factors of the 8th term. 25 and 49 are factors of the 49th term. 4 multiplied by 2 is one less then 9. 25 multiplied by 2 is one more than 49. Well, then we keep on writing out the perfect squares and then hunt for any that can be multiplied by two and then has an absolute value of 1 valued difference. 144 and 289 satisfy this. 288th term would give us these factors. By the way, this isn't  very rigorous.
 +
 
 +
No formula needed.
 +
 
 +
emilyyunhanq@gmail.com
  
 
==Video Solution==
 
==Video Solution==
Line 28: Line 86:
  
 
~Steven Chen (Professor Chen Education Palace, www.professorchenedu.com)
 
~Steven Chen (Professor Chen Education Palace, www.professorchenedu.com)
 +
 +
==Video Solution (Smart and Simple) ==
 +
 +
https://youtu.be/7yAh4MtJ8a8?si=yGkqWQUlYlVmVbqj&t=3716
 +
 +
~Math-X
 +
 +
 +
== See Also ==
 +
 +
{{AMC12 box|year=2022|ab=A|num-b=15|num-a=17}}
 +
{{MAA Notice}}

Latest revision as of 01:04, 1 November 2024

Problem

A $\emph{triangular number}$ is a positive integer that can be expressed in the form $t_n = 1+2+3+\cdots+n$, for some positive integer $n$. The three smallest triangular numbers that are also perfect squares are $t_1 = 1 = 1^2$, $t_8 = 36 = 6^2$, and $t_{49} = 1225 = 35^2$. What is the sum of the digits of the fourth smallest triangular number that is also a perfect square?

$\textbf{(A) } 6 \qquad \textbf{(B) } 9 \qquad \textbf{(C) } 12 \qquad \textbf{(D) } 18 \qquad \textbf{(E) } 27$

Solution 1(Pell Equation)

We have $t_n = \frac{n (n+1)}{2}$. If $t_n$ is a perfect square, then it can be written as $\frac{n (n+1)}{2} = k^2$, where $k$ is a positive integer.

Thus, $n (n+1) = 2 k^2$. Rearranging, we get $(2n+1)^2-2(2k)^2=1$, a Pell equation. So $\frac{2n+1}{2k}$ must be a truncation of the continued fraction for $\sqrt{2}$:

\begin{eqnarray*} 1+\frac12&=&\frac{2\cdot1+1}{2\cdot1}\\ 1+\frac1{2+\frac1{2+\frac12}}&=&\frac{2\cdot8+1}{2\cdot6}\\ 1+\frac1{2+\frac1{2+\frac1{2+\frac1{2+\frac12}}}}&=&\frac{2\cdot49+1}{2\cdot35}\\ 1+\frac1{2+\frac1{2+\frac1{2+\frac1{2+\frac1{2+\frac1{2+\frac12}}}}}}&=&\frac{2\cdot288+1}{2\cdot204} \end{eqnarray*}

Therefore, $t_{288} = \frac{288\cdot289}{2} = 204^2 = 41616$, so the answer is $4+1+6+1+6=\boxed{\textbf{(D) 18}}$.


- Steven Chen (Professor Chen Education Palace, www.professorchenedu.com)

Edited by wzs26843545602 Edited by dad

Solution 1a (Alt. Pell)

As in Solution 1, we find that $(2n+1)^2-8k^2=1$. Let $q=2n+1$; applying the difference of squares, we see that $(q-2\sqrt2k)(q+2\sqrt2k)=1$. For this Pell equation, note that $q+2\sqrt2k$ and $q-2\sqrt2k$ are both algebraic integers that are conjugates of each other. WLOG let $z=q-2\sqrt2k$ so that $\overline z=q+2\sqrt2k$; we know that $z\overline z=1$. It is clear that $\overline{ab}=\overline a\overline b$, and it immediately follows that $\left(z^n\right)\overline{\left(z^n\right)}=1$. In essence, for a solution $z$ to $z\overline z=1$, then any integer power of $z$ is also a solution. This is particularly useful in this problem: we are given that $n=1\implies q=3$ and $k=1$ is a solution, so $z=3-2\sqrt2$. From our result, we know that $z^2=\left(3-2\sqrt2\right)^2=17-2\sqrt2\cdot6$ is also a solution; this particular solution is $n=8$ and $k=6$, which is the second smallest desired number. Similarly, $z^3$ gives us the third-smallest desired number, so $z^4$ must give us our desired answer. We can calculate: $z^4=\left(17-2\sqrt2\cdot6\right)^2=289+288-2\cdot17\cdot6\cdot2\sqrt2=577-2\sqrt2\cdot204$. This lets $n=288$ and $k=204$; we thus know that $T_{288}=204^2=41616$, which has digit sum $\boxed{\textbf{(D) }18}$. QED. $\Box$

~Technodoggo

Solution 2 (Bash)

As mentioned above, $t_n = \frac{n (n+1)}{2}$. If $t_n$ is a perfect square, one of two things must occur when the fraction is split into a product. Either $\frac{n}{2}$ and $n+1$ must both be squares, or $n$ and $\frac{n+1}{2}$ must both be squares, and thus the search for the next perfect square triangular number can be narrowed down by testing values of $n$ that are close to or are perfect squares. After some work, we reach $n = 288$, $1$ less than $289$, and $t_{288} = \frac{288\cdot289}{2} = 144 \cdot 289 = 41616$. This product is a perfect square, and thus the sum of the digits of the fourth smallest perfect square triangular number is therefore $4+1+6+1+6=\boxed{\textbf{(D) 18}}$.

~kingme271

Solution 3

According to the problem, we want to find integer $p$ such $\frac{n(n+1)}{2}=p^2$, after expanding, we have $n^2+n=2p^2, 4n^2+4n=8p^2, (2n+1)^2-8p^2=1$, we call $2n+1=q$, the equation becomes $q^2-8p^2=1$, obviously $(q,p)=(3,1)$ is the elementary solution for this pell equation, thus the forth smallest solution set $q_4+2\sqrt{2}p_4=(3+2\sqrt{2})^4=577+408\sqrt{2}$, which indicates $p=204, p^2=41616$ leads to $\boxed{18}$

~bluesoul

Solution 4

If $n \choose 2$ is a square, then ${(2n-1)^2 \choose 2}$ is also a square. We can prove this quite simply:

\[{(2n-1)^2 \choose 2}\] \[= \frac{(2n-1)^2 \cdot ((2n-1)^2 - 1)}{2}\] \[= \frac{(2n-1)^2 \cdot (2n \cdot (2n - 2))}{2}\] \[= (2n-1)^2 \cdot 4{n \choose 2}.\]

Therefore, ${(2 \cdot 9 - 1)^2 \choose 2}$ is a square. Note that $T_n = {n+1 \choose 2}$. We can easily check all smaller possibilities using a bit of casework, and they don't work. Our solution is thus ${289 \choose 2} = 204^2 = 41616$, and so the answer is $\boxed{18}$.

~mathboy100

Solution 5

We want to find integer $n_i$ and $m_i$ such that $t_{n_i} =\frac{n_i (n_i + 1)}{2}=m_i^2, n_0 = 0.$

We use the formula $\sqrt{n_{i+1}} = \sqrt{2n_i} + \sqrt{n_i + 1}$ and get

\[n_1 = ( \sqrt{2n_0} + \sqrt{n_0 + 1})^2 = (0+1)^2 = 1,\] \[n_2= ( \sqrt{2n_1} + \sqrt{n_1 + 1})^2 = ( \sqrt{2} + \sqrt{1 + 1})^2 = 8,\] \[n_3= ( \sqrt{2n_2} + \sqrt{n_2 + 1})^2 = ( \sqrt{16} + \sqrt{8 + 1})^2 = 49,\] \[n_4 = ( \sqrt{2n_3} + \sqrt{n_3 + 1})^2 = ( \sqrt{98} + \sqrt{49 + 1})^2 =  ((7 + 5)\sqrt{2})^2 = 288,\] \[n_5 = ( \sqrt{2n_4} + \sqrt{n_4 + 1})^2 = ( \sqrt{576} + \sqrt{289})^2 =  (24 + 17)^2 = 1681,\] \[n_6 = ( \sqrt{2n_5} + \sqrt{n_5 + 1})^2 = ( 41\sqrt{2} + \sqrt{1682})^2 =  ((41 + 29)\sqrt{2})^2 = 9800,...\] Therefore, $t_{n_4} = t_{288} = \frac{288\cdot289}{2} = 41616 \implies 4+1+6+1+6=\boxed{\textbf{(D) 18}}$

vladimir.shelomovskii@gmail.com, vvsss

Solution 6(Fast and Simple)

This is an easy one to tackle by just noticing a pattern. Write out all the perfect squares before 300, and then notice that 4 and 9 are what are the factors of the 8th term. 25 and 49 are factors of the 49th term. 4 multiplied by 2 is one less then 9. 25 multiplied by 2 is one more than 49. Well, then we keep on writing out the perfect squares and then hunt for any that can be multiplied by two and then has an absolute value of 1 valued difference. 144 and 289 satisfy this. 288th term would give us these factors. By the way, this isn't very rigorous.

No formula needed.

emilyyunhanq@gmail.com

Video Solution

https://youtu.be/ZmSg0JYEoTw

~Steven Chen (Professor Chen Education Palace, www.professorchenedu.com)

Video Solution (Smart and Simple)

https://youtu.be/7yAh4MtJ8a8?si=yGkqWQUlYlVmVbqj&t=3716

~Math-X


See Also

2022 AMC 12A (ProblemsAnswer KeyResources)
Preceded by
Problem 15
Followed by
Problem 17
1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24 25
All AMC 12 Problems and Solutions

The problems on this page are copyrighted by the Mathematical Association of America's American Mathematics Competitions. AMC logo.png