Difference between revisions of "2014 AMC 12A Problems/Problem 18"

Revision as of 17:38, 10 July 2021

Problem

The domain of the function $f(x)=\log_{\frac12}(\log_4(\log_{\frac14}(\log_{16}(\log_{\frac1{16}}x))))$ is an interval of length $\tfrac mn$ , where $m$ and $n$ are relatively prime positive integers. What is $m+n$ ?

$\textbf{(A) }19\qquad \textbf{(B) }31\qquad \textbf{(C) }271\qquad \textbf{(D) }319\qquad \textbf{(E) }511\qquad$

Solution 1 (Generalization)

For all real numbers $a,b,$ and $c$ such that $b>0$ and $b\neq1,$ note that:

$\log_b a$ is defined if and only if $a>0.$

For we conclude that:
- $\log_b a<c$ if and only if $a>b^c.$
- $\log_b a>c$ if and only if $0<a<b^c.$
For $b>1,$ we conclude that:
- $\log_b a<c$ if and only if $0<a<b^c.$
- $\log_b a>c$ if and only if $a>b^c.$

Therefore, we have $\begin{align*} \log_{\frac12}(\log_4(\log_{\frac14}(\log_{16}(\log_{\frac1{16}}x)))) \text{ is defined} &\implies \log_4(\log_{\frac14}(\log_{16}(\log_{\frac1{16}}x)))>0 \\ &\implies \log_{\frac14}(\log_{16}(\log_{\frac1{16}}x))>1 \\ &\implies 0<\log_{16}(\log_{\frac1{16}}x)<\frac14 \\ &\implies 1<\log_{\frac1{16}}x<2 \\ &\implies \frac{1}{256}<x<\frac{1}{16}, \end{align*}$ The domain of $f(x)$ is an interval of length $\frac{1}{16}-\frac{1}{256}=\frac{15}{256},$ from which the answer is $15+256=\boxed{\textbf{(C) }271}.$

Remark

This problem is quite similar to 2004 AMC 12A Problem 16.

~MRENTHUSIASM

Solution 2 (Substitution)

For simplicity, let $a=\log_{\frac{1}{16}}{x},b=\log_{16}a,c=\log_{\frac{1}{4}}b$ , and $d=\log_4c$ .

The domain of $\log_{\frac{1}{2}}x$ is $x \in (0, \infty)$ , so $d \in (0, \infty)$ . Thus, $\log_4{c} \in (0, \infty) \Rightarrow c \in (1, \infty)$ . Since $c=\log_{\frac{1}{4}}b$ we have $b \in \left(0, \left(\frac{1}{4}\right)^1\right)=\left(0, \frac{1}{4}\right)$ . Since $b=\log_{16}{a}$ , we have $a \in (16^0,16^{1/4})=(1,2)$ . Finally, since $a=\log_{\frac{1}{16}}{x}$ , $x \in \left(\left(\frac{1}{16}\right)^2,\left(\frac{1}{16}\right)^1\right)=\left(\frac{1}{256},\frac{1}{16}\right)$ .

The length of the $x$ interval is $\frac{1}{16}-\frac{1}{256}=\frac{15}{256}$ and the answer is $\boxed{\textbf{(C) }271}$ .

Solution 3 (Calculus)

The domain of $f(x)$ is the range of the inverse function $f^{-1}(x)=\left(\frac1{16}\right)^{16^{\left(\frac14\right)^{4^{\left(\frac12\right)^x}}}}$ . Now $f^{-1}(x)$ can be seen to be strictly decreasing, since $\left(\frac12\right)^x$ is decreasing, so $4^{\left(\frac12\right)^x}$ is decreasing, so $\left(\frac14\right)^{4^{\left(\frac12\right)^x}}$ is increasing, so $16^{\left(\frac14\right)^{4^{\left(\frac12\right)^x}}}$ is increasing, therefore $\left(\frac1{16}\right)^{16^{\left(\frac14\right)^{4^{\left(\frac12\right)^x}}}}$ is decreasing.

Therefore, the range of $f^{-1}(x)$ is the open interval $\left(\lim_{x\to\infty}f^{-1}(x), \lim_{x\to-\infty}f^{-1}(x)\right)$ . We find: $\begin{align*} \lim_{x\to-\infty}\left(\frac1{16}\right)^{16^{\left(\frac14\right)^{4^{\left(\frac12\right)^x}}}}&= \lim_{a\to\infty}\left(\frac1{16}\right)^{16^{\left(\frac14\right)^{4^a}}}\\ &= \lim_{b\to\infty}\left(\frac1{16}\right)^{16^{\left(\frac14\right)^b}}\\ &= \left(\frac1{16}\right)^{16^0}\\ &= \frac{1}{16}. \end{align*}$ Similarly, $\begin{align*} \lim_{x\to\infty}\left(\frac1{16}\right)^{16^{\left(\frac14\right)^{4^{\left(\frac12\right)^x}}}}&=\left(\frac1{16}\right)^{16^{\left(\frac14\right)^{4^0}}}\\ &= \left(\frac1{16}\right)^{16^{\frac14}}\\ &= \left(\frac1{16}\right)^2\\ &= \frac{1}{256}. \end{align*}$ Hence the range of $f^{-1}(x)$ (which is then the domain of $f(x)$ ) is $\left(\frac{1}{256},\frac{1}{16}\right)$ and the answer is $\boxed{\textbf{(C) }271}$ .

@@ Line 8: / Line 8: @@
 \textbf{(E) }511\qquad</math>
-==Solution 1==
+==Solution 1 (Generalization)==
+For all real numbers <math>a,b,</math> and <math>c</math> such that <math>b>0</math> and <math>b\neq1,</math> note that:
+<ol style="margin-left: 1.5em;">
+  <li><math>\log_b a</math> is defined if and only if <math>a>0.</math></li><p>
+  <li>For <math>0<b<1,</math> we conclude that:
+<ul style="list-style-type:square;">
+<li><math>\log_b a<c</math> if and only if <math>a>b^c.</math></li><p>
+<li><math>\log_b a>c</math> if and only if <math>0<a<b^c.</math></li><p>
+</ul>
+For <math>b>1,</math> we conclude that:
+<ul style="list-style-type:square;">
+<li><math>\log_b a<c</math> if and only if <math>0<a<b^c.</math></li><p>
+<li><math>\log_b a>c</math> if and only if <math>a>b^c.</math></li><p>
+</ul>
+</ol>
+Therefore, we have
+<cmath>\begin{align*}
+\log_{\frac12}(\log_4(\log_{\frac14}(\log_{16}(\log_{\frac1{16}}x)))) \text{ is defined} &\implies \log_4(\log_{\frac14}(\log_{16}(\log_{\frac1{16}}x)))>0 \\
+&\implies \log_{\frac14}(\log_{16}(\log_{\frac1{16}}x))>1 \\
+&\implies 0<\log_{16}(\log_{\frac1{16}}x)<\frac14 \\
+&\implies 1<\log_{\frac1{16}}x<2 \\
+&\implies \frac{1}{256}<x<\frac{1}{16},
+\end{align*}</cmath>
+The domain of <math>f(x)</math> is an interval of length <math>\frac{1}{16}-\frac{1}{256}=\frac{15}{256},</math> from which the answer is <math>15+256=\boxed{\textbf{(C) }271}.</math>
+<u><b>Remark</b></u>
+This problem is quite similar to [[2004_AMC_12A_Problems/Problem_16|2004 AMC 12A Problem 16]].
+~MRENTHUSIASM
+==Solution 2 (Substitution)==
 For simplicity, let <math>a=\log_{\frac{1}{16}}{x},b=\log_{16}a,c=\log_{\frac{1}{4}}b</math>, and <math>d=\log_4c</math>.
@@ Line 18: / Line 48: @@
 Finally, since <math>a=\log_{\frac{1}{16}}{x}</math>, <math>x \in \left(\left(\frac{1}{16}\right)^2,\left(\frac{1}{16}\right)^1\right)=\left(\frac{1}{256},\frac{1}{16}\right)</math>.
-The length of the <math>x</math> interval is <math>\frac{1}{16}-\frac{1}{256}=\frac{15}{256}</math> and the answer is <math>\boxed{271 \text{ (C)}}</math>.
+The length of the <math>x</math> interval is <math>\frac{1}{16}-\frac{1}{256}=\frac{15}{256}</math> and the answer is <math>\boxed{\textbf{(C) }271}</math>.
-==Solution 2==
+==Solution 3 (Calculus)==
 The domain of <math>f(x)</math> is the range of the inverse function <math>f^{-1}(x)=\left(\frac1{16}\right)^{16^{\left(\frac14\right)^{4^{\left(\frac12\right)^x}}}}</math>. Now <math>f^{-1}(x)</math> can be seen to be strictly decreasing, since <math>\left(\frac12\right)^x</math> is decreasing, so <math>4^{\left(\frac12\right)^x}</math> is decreasing, so <math>\left(\frac14\right)^{4^{\left(\frac12\right)^x}}</math> is increasing, so <math>16^{\left(\frac14\right)^{4^{\left(\frac12\right)^x}}}</math> is increasing, therefore <math>\left(\frac1{16}\right)^{16^{\left(\frac14\right)^{4^{\left(\frac12\right)^x}}}}</math> is decreasing.
@@ Line 30: / Line 60: @@
 &= \frac{1}{16}.
 \end{align*}</cmath>
 Similarly,
 <cmath>\begin{align*}
-   \lim_{x\to\infty}\left(\frac1{16}\right)^{16^{\left(\frac14\right)^{4^{\left(\frac12\right)^x}}}}&=\left(\frac1{16}\right)^{16^{\left(\frac14\right)^{4^0}}}\\
+\lim_{x\to\infty}\left(\frac1{16}\right)^{16^{\left(\frac14\right)^{4^{\left(\frac12\right)^x}}}}&=\left(\frac1{16}\right)^{16^{\left(\frac14\right)^{4^0}}}\\
 &= \left(\frac1{16}\right)^{16^{\frac14}}\\
 &= \left(\frac1{16}\right)^2\\
 &= \frac{1}{256}.
 \end{align*}</cmath>
-Hence the range of <math>f^{-1}(x)</math> (which is then the domain of <math>f(x)</math>) is <math>\left(\frac{1}{256},\frac{1}{16}\right)</math> and the answer is <math>\boxed{271 \text{ (C)}}</math>.
+Hence the range of <math>f^{-1}(x)</math> (which is then the domain of <math>f(x)</math>) is <math>\left(\frac{1}{256},\frac{1}{16}\right)</math> and the answer is <math>\boxed{\textbf{(C) }271}</math>.
 ==See Also==
 {{AMC12 box|year=2014|ab=A|num-b=17|num-a=19}}
 {{MAA Notice}}

2014 AMC 12A (Problems • Answer Key • Resources)
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