Difference between revisions of "2002 AIME II Problems/Problem 3"

Revision as of 22:49, 5 April 2024

Problem

It is given that $\log_{6}a + \log_{6}b + \log_{6}c = 6,$ where $a,$ $b,$ and $c$ are positive integers that form an increasing geometric sequence and $b - a$ is the square of an integer. Find $a + b + c.$

Solution 1

$abc=6^6$ . Since they form an increasing geometric sequence, $b$ is the geometric mean of the product $abc$ . $b=\sqrt[3]{abc}=6^2=36$ .

Since $b-a$ is the square of an integer, we can find a few values of $a$ that work: $11, 20, 27, 32,$ and $35$ . Out of these, the only value of $a$ that works is $a=27$ , from which we can deduce that $c=\dfrac{36}{27}\cdot 36=\dfrac{4}{3}\cdot 36=48$ .

Thus, $a+b+c=27+36+48=\boxed{111}$

Solution 2(similar to Solution 1)

Let $r$ be the common ratio of the geometric sequence. Since it is increasing, that means that $b = ar$ , and $c = ar^2$ . Simplifying the logarithm, we get $\log_6(a^3*r^3) = 6$ . Therefore, $a^3*r^3 = 6^6$ . Taking the cube root of both sides, we see that $ar = 6^2 = 36$ . Now since $ar = b$ , that means $b = 36$ . Using the trial and error shown in solution 1, we get $a = 27$ , and $r = \frac{4}{3}$ . $27*r^2= c = 48$ . Therefore, the answer is $27+36+48 = \boxed{111}$

~idk12345678

@@ Line 2: / Line 2: @@
 It is given that <math>\log_{6}a + \log_{6}b + \log_{6}c = 6,</math> where <math>a,</math> <math>b,</math> and <math>c</math> are [[positive]] [[integer]]s that form an increasing [[geometric sequence]] and <math>b - a</math> is the [[Perfect square|square]] of an integer. Find <math>a + b + c.</math>
-== Solution ==
+== Solution 1==
 <math>abc=6^6</math>. Since they form an increasing geometric sequence, <math>b</math> is the [[geometric mean]] of the [[product]] <math>abc</math>. <math>b=\sqrt[3]{abc}=6^2=36</math>.
@@ Line 8: / Line 8: @@
 Thus, <math>a+b+c=27+36+48=\boxed{111}</math>
+==Solution 2(similar to Solution 1)==
+Let <math>r</math> be the common ratio of the geometric sequence. Since it is increasing, that means that <math>b = ar</math>, and <math>c = ar^2</math>. Simplifying the logarithm, we get <math>\log_6(a^3*r^3) = 6</math>. Therefore, <math>a^3*r^3 = 6^6</math>. Taking the cube root of both sides, we see that <math>ar = 6^2 = 36</math>. Now since <math>ar = b</math>, that means <math>b = 36</math>. Using the trial and error shown in solution 1, we get <math>a = 27</math>, and <math>r = \frac{4}{3}</math>. <math>27*r^2= c = 48</math>. Therefore, the answer is <math>27+36+48 = \boxed{111}</math>
+~idk12345678
 == See also ==

2002 AIME II (Problems • Answer Key • Resources)
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Difference between revisions of "2002 AIME II Problems/Problem 3"

Revision as of 22:49, 5 April 2024

Contents

Problem

Solution 1

Solution 2(similar to Solution 1)

See also