1981 AHSME Problems/Problem 15: Difference between revisions

Revision as of 01:17, 26 June 2025

Problem

If $b>1$ , $x>0$ , and $(2x)^{\log_b 2}-(3x)^{\log_b 3}=0$ , then $x$ is

$\textbf{(A)}\ \dfrac{1}{216}\qquad\textbf{(B)}\ \dfrac{1}{6}\qquad\textbf{(C)}\ 1\qquad\textbf{(D)}\ 6\qquad\textbf{(E)}\ \text{not uniquely determined}$

Solution

Use rules of logarithms to solve this equation.

$(2x)^{\log_{b} 2} = (3x)^{\log_{b} 3}$

$\log_{b} 2 \cdot \log_{b} 2x = \log_{b} 3 \cdot \log_{b} 3x$

$\log_{b} 2 \cdot (\log_{b} 2 + \log_{b} x) = \log_{b} 3 \cdot (\log_{b} 3 + \log_{b} x)$

$(\log_{b} 2)^2 + \log_{b} 2 \cdot \log_{b} x = (\log_{b} 3)^2 + \log_{b} 3 \cdot \log_{b} x$

$(\log_{b} 2)^2 - (\log_{b} 3)^2 = \log_{b} 3 \cdot \log_{b} x - \log_{b} 2 \cdot \log_{b} x$

$(\log_{b} 2 + \log_{b} 3)(\log_{b} 2 - \log_{b} 3) = \log_{b} x \cdot (\log_{b} 3 - \log_{b} 2)$

$\log_{b} 2 + \log_{b} 3 = -\log_{b} x$

$\log_{b} 6 = -\log_{b} x$

$6 = \frac{1}{x}$

$x = \frac{1}{6}\ \fbox {(B)}$

@@ Line 19: / Line 19: @@
 <math>(\log_{b} 2)^2 - (\log_{b} 3)^2  =  \log_{b} 3 \cdot \log_{b} x - \log_{b} 2 \cdot \log_{b} x </math>
-<math>\boxed {B}</math>
+<math>(\log_{b} 2 + \log_{b} 3)(\log_{b} 2 - \log_{b} 3) = \log_{b} x \cdot (\log_{b} 3 - \log_{b} 2)</math>
+<math>\log_{b} 2 + \log_{b} 3 = -\log_{b} x</math>
+<math>\log_{b} 6 = -\log_{b} x</math>
+<math>6 = \frac{1}{x}</math>
+<math>x = \frac{1}{6}\  \fbox {(B)}</math>

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1981 AHSME Problems/Problem 15: Difference between revisions

Revision as of 01:17, 26 June 2025

Problem

Solution