Difference between revisions of "2020 AMC 8 Problems/Problem 22"

(Solution 1)
 
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==Problem 22==
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==Problem==
 
When a positive integer <math>N</math> is fed into a machine, the output is a number calculated according to the rule shown below.
 
When a positive integer <math>N</math> is fed into a machine, the output is a number calculated according to the rule shown below.
  
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==Solution 1==
 
==Solution 1==
We start with the final output of <math>1</math> and work backwards, taking care to consider all possible inputs that could have resulted in any particular output. This produces the following set of possibilities at each stage:
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We start with final output of <math>1</math> and work backward, taking cares to consider all possible inputs that could have resulted in any particular output. This produces following set of possibilities each stage:
 
<cmath>\{1\}\rightarrow\{2\}\rightarrow\{4\}\rightarrow\{1,8\}\rightarrow\{2,16\}\rightarrow\{4,5,32\}\rightarrow\{1,8,10,64\}</cmath>
 
<cmath>\{1\}\rightarrow\{2\}\rightarrow\{4\}\rightarrow\{1,8\}\rightarrow\{2,16\}\rightarrow\{4,5,32\}\rightarrow\{1,8,10,64\}</cmath>
where, for example, <math>2</math> must come from <math>4</math> (as there is no integer <math>n</math> satisfying <math>3n+1=2</math>), but <math>16</math> could come from <math>32</math> or <math>5</math> (as <math>\frac{32}{2} = 3 \cdot 5 + 1 = 16</math>, and <math>32</math> is even while <math>5</math> is odd). By construction, the last set in this sequence contains all the numbers which will lead to number <math>1</math> to the end of the <math>6</math>-step process, and their sum is <math>1+8+10+64=\boxed{\textbf{(E) }83}</math>.
+
where, for example, <math>2</math> must come from <math>4</math> (as there is no integer <math>n</math> satisfying <math>3n+1=2</math>), but <math>16</math> could come from <math>32</math> or <math>5</math> (as <math>\frac{32}{2} = 3 \cdot 5 + 1 = 16</math>, and <math>32</math> is even while <math>5</math> is odd). By construction, last set in this sequence contains all the numbers which will lead to number <math>1</math> to end of the <math>6</math>-step process, and sum is <math>1+8+10+64=\boxed{\textbf{(E) }83}</math>.
  
 
==Solution 2 (variant of Solution 1)==
 
==Solution 2 (variant of Solution 1)==
 
As in Solution 1, we work backwards from <math>1</math>, this time showing the possible cases in a tree diagram:
 
As in Solution 1, we work backwards from <math>1</math>, this time showing the possible cases in a tree diagram:
[[File:Prob22-diagram.png|middle|center]]
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 +
<asy>
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// Upper branches
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draw((-6, 1.5)--(-5, 1)--(-3, 1)--(-2,0)--(0, 0));
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draw((-6, 0.5)--(-5, 1));
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// Lower branches
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draw((-6, -1.5)--(-5, -1.5)--(-4, -1)--(-3, -1)--(-2, 0));
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draw((-6, -0.5)--(-5, -0.5)--(-4, -1));
 +
 
 +
label("$1$", (0, 0),  UnFill(0.1mm));
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label("$2$", (-1, 0), UnFill(0.1mm));
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label("$4$", (-2, 0), UnFill(0.1mm));
 +
 
 +
// Upper branches
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label("$1$", (-3, 1), UnFill(0.1mm));
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label("$2$", (-4, 1), UnFill(0.1mm));
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label("$4$", (-5, 1), UnFill(0.1mm));
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label("$\textbf{8}$", (-6, 1.5), UnFill(0.1mm));
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label("$\textbf{1}$", (-6, 0.5), UnFill(0.1mm));
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// Lower branches
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label("$8$", (-3, -1), UnFill(0.1mm));
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label("$16$",(-4, -1), UnFill(0.1mm));
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label("$5$", (-5, -0.5), UnFill(0.1mm));
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label("$32$", (-5, -1.5), UnFill(0.1mm));
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label("$\textbf{10}$", (-6, -0.5), UnFill(0.1mm));
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label("$\textbf{64}$", (-6, -1.5), UnFill(0.1mm));
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</asy>
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The possible numbers are those at the "leaves" of the tree (the ends of the various branches), which are <math>1</math>, <math>8</math>, <math>64</math>, and <math>10</math>. Thus the answer is <math>1+8+64+10=\boxed{\textbf{(E) }83}</math>.
 
The possible numbers are those at the "leaves" of the tree (the ends of the various branches), which are <math>1</math>, <math>8</math>, <math>64</math>, and <math>10</math>. Thus the answer is <math>1+8+64+10=\boxed{\textbf{(E) }83}</math>.
  
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On the other hand, if the 4th-to-last number is <math>8</math>, substituting <math>8</math> into the inverse formulae shows that the 5th-to-last number is either <math>16</math> or <math>\frac{7}{3}</math>, but the latter is not an integer. Substituting <math>16</math> shows that if <math>I</math> is even, <math>I=32</math>, but if I is odd, <math>I=5</math>, and both of these are valid. If the 6th-to-last number is <math>32</math>, then the first number must be <math>64</math>, since <math>\frac{31}{3}</math> is not an integer; if the 6th-to-last number is <math>5,</math> then the first number has to be <math>10</math>, as <math>\frac{4}{3}</math> is not an integer. This means that, in total, there are <math>4</math> solutions for <math>N</math>, specifically, <math>1</math>, <math>8</math>, <math>10</math>, and <math>64</math>, which sum to <math>\boxed{\textbf{(E) }83}</math>.
 
On the other hand, if the 4th-to-last number is <math>8</math>, substituting <math>8</math> into the inverse formulae shows that the 5th-to-last number is either <math>16</math> or <math>\frac{7}{3}</math>, but the latter is not an integer. Substituting <math>16</math> shows that if <math>I</math> is even, <math>I=32</math>, but if I is odd, <math>I=5</math>, and both of these are valid. If the 6th-to-last number is <math>32</math>, then the first number must be <math>64</math>, since <math>\frac{31}{3}</math> is not an integer; if the 6th-to-last number is <math>5,</math> then the first number has to be <math>10</math>, as <math>\frac{4}{3}</math> is not an integer. This means that, in total, there are <math>4</math> solutions for <math>N</math>, specifically, <math>1</math>, <math>8</math>, <math>10</math>, and <math>64</math>, which sum to <math>\boxed{\textbf{(E) }83}</math>.
 +
 +
==Remark==
 +
This function is known as the Collatz conjecture stating that every counting number (<math>1</math>, <math>2</math>, <math>3</math>, <math>4</math>, <math>...</math>) will eventually output the sequence (<math>4</math>, <math>2</math>, <math>1</math>, <math>4</math>, <math>2</math>, <math>1</math>, <math>...</math>) if put through the function enough times. It is an unsolved conjecture but has been tested by brute force for every starting number up to <math>2^{68}</math>.
 +
 +
==Video Solution by Math-X (First understand the problem!!!)==
 +
https://youtu.be/UnVo6jZ3Wnk?si=l0KAetejsLeFS2We&t=4703
 +
 +
~Math-X
 +
 +
==Video Solution (🚀 Just 2 min 🚀)==
 +
https://youtu.be/fEux4gUZFbM
 +
 +
~<i>Education, the Study of Everything</i>
 +
 +
==Video Solution==
 +
https://youtu.be/Tf_80QNGmsI
 +
 +
Please like and subscribe!
 +
 +
== Video Solution by OmegaLearn ==
 +
https://youtu.be/ytTRdD-LVlo?t=755
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 +
~ pi_is_3.14
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==Video Solution==
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https://www.youtube.com/watch?v=tItOXq9kvu4  ~David
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 +
==Video Solution by Mathiscool==
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 +
https://www.youtube.com/watch?v=aLq7LrZZGhc
 +
  
 
==Video Solution by WhyMath==
 
==Video Solution by WhyMath==
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==Video Solutions==
 
==Video Solutions==
https://youtu.be/lhDFmiKNPBg
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https://youtu.be/lhDFmiKNPBg ~ The Learning Royal
  
 
==Video Solution by Interstigation==
 
==Video Solution by Interstigation==
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~Interstigation
 
~Interstigation
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==Video Solution by STEMbreezy==
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https://youtu.be/wq8EUCe5oQU?t=83
 +
 +
~STEMbreezy
 +
==Note==
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 +
This problem is related to a famous unsolved problem, the Collatz Conjecture, also known as the Hailstone Problem, which essentially asks whether or not integer <math>n</math>, repeatedly put in the machine arbitrarily many times, will eventually reach <math>1</math>.
  
 
==See also==  
 
==See also==  
 
{{AMC8 box|year=2020|num-b=21|num-a=23}}
 
{{AMC8 box|year=2020|num-b=21|num-a=23}}
 
{{MAA Notice}}
 
{{MAA Notice}}

Latest revision as of 10:17, 12 December 2023

Problem

When a positive integer $N$ is fed into a machine, the output is a number calculated according to the rule shown below.

[asy] size(300); defaultpen(linewidth(0.8)+fontsize(13)); real r = 0.05; draw((0.9,0)--(3.5,0),EndArrow(size=7)); filldraw((4,2.5)--(7,2.5)--(7,-2.5)--(4,-2.5)--cycle,gray(0.65)); fill(circle((5.5,1.25),0.8),white); fill(circle((5.5,1.25),0.5),gray(0.65)); fill((4.3,-r)--(6.7,-r)--(6.7,-1-r)--(4.3,-1-r)--cycle,white); fill((4.3,-1.25+r)--(6.7,-1.25+r)--(6.7,-2.25+r)--(4.3,-2.25+r)--cycle,white); fill((4.6,-0.25-r)--(6.4,-0.25-r)--(6.4,-0.75-r)--(4.6,-0.75-r)--cycle,gray(0.65)); fill((4.6,-1.5+r)--(6.4,-1.5+r)--(6.4,-2+r)--(4.6,-2+r)--cycle,gray(0.65)); label("$N$",(0.45,0)); draw((7.5,1.25)--(11.25,1.25),EndArrow(size=7)); draw((7.5,-1.25)--(11.25,-1.25),EndArrow(size=7)); label("if $N$ is even",(9.25,1.25),N); label("if $N$ is odd",(9.25,-1.25),N); label("$\frac N2$",(12,1.25)); label("$3N+1$",(12.6,-1.25)); [/asy] For example, starting with an input of $N=7,$ the machine will output $3 \cdot 7 +1 = 22.$ Then if the output is repeatedly inserted into the machine five more times, the final output is $26.$\[7 \to 22 \to 11 \to 34 \to 17 \to 52 \to 26\]When the same $6$-step process is applied to a different starting value of $N,$ the final output is $1.$ What is the sum of all such integers $N?$\[N \to \rule{0.5cm}{0.15mm} \to \rule{0.5cm}{0.15mm} \to \rule{0.5cm}{0.15mm} \to \rule{0.5cm}{0.15mm} \to \rule{0.5cm}{0.15mm} \to 1\] $\textbf{(A) }73 \qquad \textbf{(B) }74 \qquad \textbf{(C) }75 \qquad \textbf{(D) }82 \qquad \textbf{(E) }83$

Solution 1

We start with final output of $1$ and work backward, taking cares to consider all possible inputs that could have resulted in any particular output. This produces following set of possibilities each stage: \[\{1\}\rightarrow\{2\}\rightarrow\{4\}\rightarrow\{1,8\}\rightarrow\{2,16\}\rightarrow\{4,5,32\}\rightarrow\{1,8,10,64\}\] where, for example, $2$ must come from $4$ (as there is no integer $n$ satisfying $3n+1=2$), but $16$ could come from $32$ or $5$ (as $\frac{32}{2} = 3 \cdot 5 + 1 = 16$, and $32$ is even while $5$ is odd). By construction, last set in this sequence contains all the numbers which will lead to number $1$ to end of the $6$-step process, and sum is $1+8+10+64=\boxed{\textbf{(E) }83}$.

Solution 2 (variant of Solution 1)

As in Solution 1, we work backwards from $1$, this time showing the possible cases in a tree diagram:

[asy] // Upper branches draw((-6, 1.5)--(-5, 1)--(-3, 1)--(-2,0)--(0, 0)); draw((-6, 0.5)--(-5, 1)); // Lower branches draw((-6, -1.5)--(-5, -1.5)--(-4, -1)--(-3, -1)--(-2, 0)); draw((-6, -0.5)--(-5, -0.5)--(-4, -1));  label("$1$", (0, 0),  UnFill(0.1mm)); label("$2$", (-1, 0), UnFill(0.1mm)); label("$4$", (-2, 0), UnFill(0.1mm));  // Upper branches label("$1$", (-3, 1), UnFill(0.1mm)); label("$2$", (-4, 1), UnFill(0.1mm)); label("$4$", (-5, 1), UnFill(0.1mm)); label("$\textbf{8}$", (-6, 1.5), UnFill(0.1mm)); label("$\textbf{1}$", (-6, 0.5), UnFill(0.1mm));  // Lower branches label("$8$", (-3, -1), UnFill(0.1mm)); label("$16$",(-4, -1), UnFill(0.1mm)); label("$5$", (-5, -0.5), UnFill(0.1mm)); label("$32$", (-5, -1.5), UnFill(0.1mm)); label("$\textbf{10}$", (-6, -0.5), UnFill(0.1mm)); label("$\textbf{64}$", (-6, -1.5), UnFill(0.1mm)); [/asy]

The possible numbers are those at the "leaves" of the tree (the ends of the various branches), which are $1$, $8$, $64$, and $10$. Thus the answer is $1+8+64+10=\boxed{\textbf{(E) }83}$.

Solution 3 (algebraic)

We begin by finding the inverse of the function that the machine uses. Call the input $I$ and the output $O$. If $I$ is even, $O=\frac{I}{2}$, and if $I$ is odd, $O=3I+1$. We can therefore see that $I=2O$ when $I$ is even and $I=\frac{O-1}{3}$ when $I$ is odd. Therefore, starting with $1$, if $I$ is even, $I=2$, and if $I$ is odd, $I=0$, but the latter is not valid since $0$ is not actually odd. This means that the 2nd-to-last number in the sequence has to be $2$. Now, substituting $2$ into the inverse formulae, if $I$ is even, $I=4$ (which is indeed even), and if $I$ is odd, $I=\frac{1}{3}$, which is not an integer. This means the 3rd-to-last number in the sequence has to be $4$. Substituting in $4$, if $I$ is even, $I=8$, but if $I$ is odd, $I=1$. Both of these are valid solutions, so the 4th-to-last number can be either $1$ or $8$. If it is $1$, then by the argument we have just made, the 5th-to-last number has to be $2$, the 6th-to-last number has to be $4$, and the 7th-to-last number, which is the first number, must be either $1$ or $8$. In this way, we have ultimately found two solutions: $N=1$ and $N=8$.

On the other hand, if the 4th-to-last number is $8$, substituting $8$ into the inverse formulae shows that the 5th-to-last number is either $16$ or $\frac{7}{3}$, but the latter is not an integer. Substituting $16$ shows that if $I$ is even, $I=32$, but if I is odd, $I=5$, and both of these are valid. If the 6th-to-last number is $32$, then the first number must be $64$, since $\frac{31}{3}$ is not an integer; if the 6th-to-last number is $5,$ then the first number has to be $10$, as $\frac{4}{3}$ is not an integer. This means that, in total, there are $4$ solutions for $N$, specifically, $1$, $8$, $10$, and $64$, which sum to $\boxed{\textbf{(E) }83}$.

Remark

This function is known as the Collatz conjecture stating that every counting number ($1$, $2$, $3$, $4$, $...$) will eventually output the sequence ($4$, $2$, $1$, $4$, $2$, $1$, $...$) if put through the function enough times. It is an unsolved conjecture but has been tested by brute force for every starting number up to $2^{68}$.

Video Solution by Math-X (First understand the problem!!!)

https://youtu.be/UnVo6jZ3Wnk?si=l0KAetejsLeFS2We&t=4703

~Math-X

Video Solution (🚀 Just 2 min 🚀)

https://youtu.be/fEux4gUZFbM

~Education, the Study of Everything

Video Solution

https://youtu.be/Tf_80QNGmsI

Please like and subscribe!

Video Solution by OmegaLearn

https://youtu.be/ytTRdD-LVlo?t=755

~ pi_is_3.14

Video Solution

https://www.youtube.com/watch?v=tItOXq9kvu4 ~David

Video Solution by Mathiscool

https://www.youtube.com/watch?v=aLq7LrZZGhc


Video Solution by WhyMath

https://youtu.be/ZrDCymOhDdI

~savannahsolver

Video Solutions

https://youtu.be/lhDFmiKNPBg ~ The Learning Royal

Video Solution by Interstigation

https://youtu.be/YnwkBZTv5Fw?t=1347

~Interstigation

Video Solution by STEMbreezy

https://youtu.be/wq8EUCe5oQU?t=83

~STEMbreezy

Note

This problem is related to a famous unsolved problem, the Collatz Conjecture, also known as the Hailstone Problem, which essentially asks whether or not integer $n$, repeatedly put in the machine arbitrarily many times, will eventually reach $1$.

See also

2020 AMC 8 (ProblemsAnswer KeyResources)
Preceded by
Problem 21
Followed by
Problem 23
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 AJHSME/AMC 8 Problems and Solutions

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