Difference between revisions of "2016 AMC 12B Problems/Problem 14"
(→Solution 2) |
|||
(14 intermediate revisions by 6 users not shown) | |||
Line 19: | Line 19: | ||
For 2 positive real numbers <math>a</math> and <math>b</math>, <math>\frac{a+b}{2} \geq \sqrt{ab}</math>. Let <math>a = \frac{1}{r}</math> and <math>b = \frac{1}{1-r}</math>. Then: <math>\frac{\frac{1}{r}+\frac{1}{1-r}}{2} \geq \sqrt{\frac{1}{r}\cdot\frac{1}{1-r}}=\sqrt{\frac{1}{r}+\frac{1}{1-r}}</math>. This implies that <math>\frac{S_\infty}{2} \geq \sqrt{S_\infty}</math>. or <math>S_\infty^2 \geq 4 \cdot S_\infty</math>. Rearranging : <math>(S_\infty-2)^2 \geq 4 \Rightarrow S_\infty - 2 \geq 2 \Rightarrow S_\infty \geq 4</math>. Thus, the smallest value is <math>S_\infty = 4</math>. | For 2 positive real numbers <math>a</math> and <math>b</math>, <math>\frac{a+b}{2} \geq \sqrt{ab}</math>. Let <math>a = \frac{1}{r}</math> and <math>b = \frac{1}{1-r}</math>. Then: <math>\frac{\frac{1}{r}+\frac{1}{1-r}}{2} \geq \sqrt{\frac{1}{r}\cdot\frac{1}{1-r}}=\sqrt{\frac{1}{r}+\frac{1}{1-r}}</math>. This implies that <math>\frac{S_\infty}{2} \geq \sqrt{S_\infty}</math>. or <math>S_\infty^2 \geq 4 \cdot S_\infty</math>. Rearranging : <math>(S_\infty-2)^2 \geq 4 \Rightarrow S_\infty - 2 \geq 2 \Rightarrow S_\infty \geq 4</math>. Thus, the smallest value is <math>S_\infty = 4</math>. | ||
+ | ==Solution 1== | ||
+ | The sum of the geometric sequence is <math>\frac{a}{1 - r}</math> where <math>a</math> is the first term and <math>r</math> is the common ratio. We know the second term, <math>ar,</math> is equal to <math>1.</math> Thus <math>ar = 1 \Rightarrow a = \frac{1}{r}.</math> This means, | ||
+ | <cmath>S = \frac{a}{1 - r} = \frac{1/r}{1 - r} = \frac{1}{r(1 - r)}.</cmath> | ||
+ | In order to minimize <math>S,</math> we maximize the denominator. By AM-GM, | ||
+ | <cmath>\frac{(r) + (1 - r)}{2} \ge \sqrt{r(1-r)} \Rightarrow \frac{1}{4} \ge r(1-r).</cmath> | ||
+ | Equality occurs at <math>r = 1-r \Rightarrow r = \frac{1}{2}.</math> This gives the minimum value of <math>S</math> as <math>\frac{\frac{1}{1/2}}{1 - \frac{1}{2}} = \boxed{(E)~4}.</math> | ||
==Solution 2== | ==Solution 2== | ||
Line 39: | Line 45: | ||
<cmath>S=\frac{a^2}{a-1}</cmath> | <cmath>S=\frac{a^2}{a-1}</cmath> | ||
− | We seek the smallest positive value of <math>S</math>. We proceed by graphing in the <math>aS</math> plane and find the answer is <math>\boxed{\textbf{(E)}\ 4}.</math> | + | We seek the smallest positive value of <math>S</math>. We proceed by graphing in the <math>aS</math> plane (if you want to be rigorous, only stop graphing when you know all the rest you didn't graph is just the approaching of asymptotes and infinities) and find the answer is <math>\boxed{\textbf{(E)}\ 4}.</math> |
<math>\textbf{Solving in terms of \textit{r} then graphing}</math> | <math>\textbf{Solving in terms of \textit{r} then graphing}</math> | ||
Line 45: | Line 51: | ||
<cmath>S=\frac{1}{-r^2+r}</cmath> | <cmath>S=\frac{1}{-r^2+r}</cmath> | ||
− | We seek the smallest positive value of <math>S</math>. We proceed by graphing in the <math>rS</math> plane and find the answer is <math>\boxed{\textbf{(E)}\ 4}.</math> | + | We seek the smallest positive value of <math>S</math>. We proceed by graphing in the <math>rS</math> plane (if you want to be rigorous, only stop graphing when you know all the rest you didn't graph is just the approaching of asymptotes and infinities) and find the answer is <math>\boxed{\textbf{(E)}\ 4}.</math> |
− | <math>\textbf{Solving in terms of \textit{a} then doing some | + | <math>\textbf{Solving in terms of \textit{a} then doing some calculus}</math> |
<cmath>S=\frac{a^2}{a-1}</cmath> | <cmath>S=\frac{a^2}{a-1}</cmath> | ||
Line 58: | Line 64: | ||
We seek the smallest positive value of <math>S</math>. We could use calculus like we did in the solution immediately above this one, but that's a lot of work and we don't have a ton of time. To minimize the positive value of this fraction, we must maximize the denominator. The denominator is a quadratic that opens down, so its maximum occurs at its vertex. The vertex of this quadratic occurs at <math>x=\frac{1}{2}</math> and <math>\frac{1}{-(\frac{1}{2})^2+\frac{1}{2}}=\boxed{\textbf{(E)}\ 4}</math>. | We seek the smallest positive value of <math>S</math>. We could use calculus like we did in the solution immediately above this one, but that's a lot of work and we don't have a ton of time. To minimize the positive value of this fraction, we must maximize the denominator. The denominator is a quadratic that opens down, so its maximum occurs at its vertex. The vertex of this quadratic occurs at <math>x=\frac{1}{2}</math> and <math>\frac{1}{-(\frac{1}{2})^2+\frac{1}{2}}=\boxed{\textbf{(E)}\ 4}</math>. | ||
+ | |||
+ | ==Solution 3== | ||
+ | <cmath>\textbf{Completing the Square and Quadratics}</cmath> | ||
+ | Let <math>r</math> be the common ratio. If the second term is <math>1</math>, the first must be <math>\frac{1}{r}</math>. By the infinite geometric series formula, the sum must be <cmath>S=\frac{\frac{1}{r}}{1-r}</cmath> This equals <math>\frac{1}{r(1-r)}</math>. To find the minimum value of S, we must find the maximum value of the denominator, <math>r(1-r)</math>, which is <math>\frac{1}{4}</math>, completing the square. Thus, the minimum value of <math>S</math> is <math>\boxed{\textbf{(E)}\ 4}</math>. | ||
+ | ==Solution 4 (no AM-GM or Calculus)== | ||
+ | Our sequence is <math>a_1,1,...</math>. Since we know this is a converging series, our ratio is in <math>(0,1)</math>. Because the 2nd term in the sequence is a 1, the ratio must be <math>\frac{1}{a_1}</math>, so we can write <math>S</math> as <math>\frac{a_1}{1-\frac{1}{a_1}}</math>. With some manipulation we get <math>S=\frac{1}{a_1-1}</math>. Since S has to be a "positive number," we come to think <math>a_1</math> is <math>2</math> (makes S positive & we know a sequence/series of a ratio <math>1/2</math> is definitely convergent). So our sequence is <math>2,1,1/2,1,4,...</math>, <math>2+1+1=\boxed{\textbf{(E)}\ 4}</math>. | ||
+ | -thedodecagon | ||
+ | |||
+ | ==Solution 5 (Quadratic formula)== | ||
+ | As in the previous solutions, <math>S=\frac{1}{r-r^2} \implies Sr^2-Sr+1=0 \implies \text{discriminant}=S^2-4S \ge 0</math> since we know that such an <math>r</math> exists. We then have <math>S \ge 4</math> for positive <math>S,</math> and this is achievable when <math>r=.5,</math> so the answer is <math>4.</math> | ||
+ | |||
+ | ==Video Solution by CanadaMath (Problem 11-20)== | ||
+ | Fast Forward to 12:26 for problem 14 | ||
+ | https://www.youtube.com/watch?v=4osvFatUv1o | ||
+ | |||
+ | ~THEMATHCANADIAN | ||
==See Also== | ==See Also== | ||
{{AMC12 box|year=2016|ab=B|num-b=13|num-a=15}} | {{AMC12 box|year=2016|ab=B|num-b=13|num-a=15}} | ||
{{MAA Notice}} | {{MAA Notice}} |
Latest revision as of 00:12, 10 November 2024
Contents
Problem
The sum of an infinite geometric series is a positive number , and the second term in the series is . What is the smallest possible value of
Solution
The second term in a geometric series is , where is the common ratio for the series and is the first term of the series. So we know that and we wish to find the minimum value of the infinite sum of the series. We know that: and substituting in , we get that . From here, you can either use calculus or AM-GM.
Let , then . Since and are undefined . This means that we only need to find where the derivative equals , meaning . So , meaning that
For 2 positive real numbers and , . Let and . Then: . This implies that . or . Rearranging : . Thus, the smallest value is .
Solution 1
The sum of the geometric sequence is where is the first term and is the common ratio. We know the second term, is equal to Thus This means, In order to minimize we maximize the denominator. By AM-GM, Equality occurs at This gives the minimum value of as
Solution 2
A geometric sequence always looks like
and they say that the second term . You should know that the sum of an infinite geometric series (denoted by here) is . We now have a system of equations which allows us to find in one variable.
We seek the smallest positive value of . We proceed by graphing in the plane (if you want to be rigorous, only stop graphing when you know all the rest you didn't graph is just the approaching of asymptotes and infinities) and find the answer is
We seek the smallest positive value of . We proceed by graphing in the plane (if you want to be rigorous, only stop graphing when you know all the rest you didn't graph is just the approaching of asymptotes and infinities) and find the answer is
We seek the smallest positive value of . and at and . and is negative (implying a relative maximum occurs at ) and is positive (implying a relative minimum occurs at ). At , . Since this a competition math problem with an answer, we know this relative minimum must also be the absolute minimum among the "positive parts" of and that our answer is indeed However, to be sure of this outside of this cop-out, one can analyze the end behavior of , how behaves at its asymptotes, and the locations of its maxima and minima relative to the asymptotes to be sure that 4 is the absolute minimum among the "positive parts" of .
We seek the smallest positive value of . We could use calculus like we did in the solution immediately above this one, but that's a lot of work and we don't have a ton of time. To minimize the positive value of this fraction, we must maximize the denominator. The denominator is a quadratic that opens down, so its maximum occurs at its vertex. The vertex of this quadratic occurs at and .
Solution 3
Let be the common ratio. If the second term is , the first must be . By the infinite geometric series formula, the sum must be This equals . To find the minimum value of S, we must find the maximum value of the denominator, , which is , completing the square. Thus, the minimum value of is .
Solution 4 (no AM-GM or Calculus)
Our sequence is . Since we know this is a converging series, our ratio is in . Because the 2nd term in the sequence is a 1, the ratio must be , so we can write as . With some manipulation we get . Since S has to be a "positive number," we come to think is (makes S positive & we know a sequence/series of a ratio is definitely convergent). So our sequence is , . -thedodecagon
Solution 5 (Quadratic formula)
As in the previous solutions, since we know that such an exists. We then have for positive and this is achievable when so the answer is
Video Solution by CanadaMath (Problem 11-20)
Fast Forward to 12:26 for problem 14 https://www.youtube.com/watch?v=4osvFatUv1o
~THEMATHCANADIAN
See Also
2016 AMC 12B (Problems • Answer Key • Resources) | |
Preceded by Problem 13 |
Followed by Problem 15 |
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.