Difference between revisions of "2007 AIME II Problems/Problem 12"
m (→Solution) |
(→Solution 3) |
||
(7 intermediate revisions by 4 users not shown) | |||
Line 4: | Line 4: | ||
<math>\sum_{n=0}^{7}\log_{3}(x_{n}) = 308</math> and <math>56 \leq \log_{3}\left ( \sum_{n=0}^{7}x_{n}\right ) \leq 57,</math> | <math>\sum_{n=0}^{7}\log_{3}(x_{n}) = 308</math> and <math>56 \leq \log_{3}\left ( \sum_{n=0}^{7}x_{n}\right ) \leq 57,</math> | ||
− | find <math> | + | find <math>\log_{3}(x_{14}).</math> |
== Solution == | == Solution == | ||
Line 17: | Line 17: | ||
Our solution is therefore <math>\log_3 (ar^{14}) = \log_3 3^x + \log_3 3^{14y} = x + 14y = \boxed{091}</math>. | Our solution is therefore <math>\log_3 (ar^{14}) = \log_3 3^x + \log_3 3^{14y} = x + 14y = \boxed{091}</math>. | ||
+ | |||
+ | ==Solution 2== | ||
+ | All these integral powers of <math>3</math> are all different, thus in base <math>3</math> the sum of these powers would consist of <math>1</math>s and <math>0</math>s. Thus the largest value <math>x_7</math> must be <math>3^{56}</math> in order to preserve the givens. Then we find by the given that <math>x_7x_6x_5\dots x_0 = 3^{308}</math>, and we know that the exponents of <math>x_i</math> are in an arithmetic sequence. Thus <math>56+(56-r)+(56-2r)+\dots +(56-7r) = 308</math>, and <math>r = 5</math>. Thus <math>\log_3 (x_{14}) = \boxed{091}</math>. | ||
+ | |||
+ | ==Solution 3== | ||
+ | Like above, we use logarithmic identities to convert the problem into workable equations. We begin by labelling the powers of 3. Call <math>x_0</math>, <math>x_1</math>, <math>x_2</math>..., as <math>3^n</math>, <math>3^{n+m}</math>, and <math>3^{n+2m}</math>... respectively. With this format we can rewrite the first given equation as <math>n + n + m + n+2m + n+3m+...+n+7m = 308</math>. Simplify to get <math>2n+7m=77</math>. (1) | ||
+ | |||
+ | Now, rewrite the second given equation as <math>3^{56} \leq \left( \sum_{n=0}^{7}x_{n} \right) \leq 3^{57}</math>. Obviously, <math>x_7</math>, aka <math>3^{n+7m}</math> <math><3^{57}</math> because there are some small fractional change that is left over. This means <math>n+7m</math> is <math>\leq56</math>. Thinking about the geometric sequence, it's clear each consecutive value of <math>x_i</math> will be either a power of three times smaller or larger. In other words, the earliest values of <math>x_i</math> will be negligible compared to the last values of <math>x_i</math>. Even in the best case scenario, where the common ratio is 3, the values left of <math>x_7</math> are not enough to sum to a value greater than 2 times <math>x_7</math> (amount needed to raise the power of 3 by 1). This confirms that <math>3^{n+7m} = 3^{56}</math>. (2) | ||
+ | |||
+ | Use equations 1 and 2 to get <math>m=5</math> and <math>n=21</math>. <math>\log_{3}{x_{14}} = \log_{3}{3^{21+14*5}} = 21+14*5 = \boxed{091}</math> | ||
+ | |||
+ | |||
+ | -jackshi2006 | ||
+ | ==Solution 4 (dum)== | ||
+ | Proceed as in Solution 3 for the first few steps. We have the sequence <math>3^{a},3^{a+n},3^{a+2n}...</math>. As stated above, we then get that <math>a+a+n+...+a+7n=308</math>, from which we simplify to <math>2a+7n=77</math>. From here, we just go brute force using the second statement (that <math>3^{56}\leq 3^{a}+...+3^{a+7n}\leq 3^{57}</math>). Rearranging the equation from earlier, we get | ||
+ | <cmath>n=11-\frac{2a}{7}</cmath> | ||
+ | from which it is clear that <math>a</math> is a multiple of <math>7</math>. Testing the first few values of <math>a</math>, we get: | ||
+ | Case 1 (<math>a=7,n=9</math>) | ||
+ | The sequence is then <math>3^{7}+...+3^{70}</math>, which breaks the upper bound. | ||
+ | Case 2 (<math>a=14,n=7</math>) | ||
+ | The sequence is then <math>3^{14}+...+3^{63}</math>, which also breaks the upper bound. | ||
+ | Case 3 (<math>a=21,n=5</math>) | ||
+ | This is the first reasonable one, giving <math>3^{21}+...+3^{56}</math>. It seems like this would break the upper bound, but from some testing we get: | ||
+ | <cmath>3^{21}+...+3^{56}<3^{57}</cmath> | ||
+ | <cmath>1+...+3^{35}<3^{36}</cmath> | ||
+ | <cmath>1+...+3^{30}<2*3^{35}</cmath> | ||
+ | <cmath>3^{5}+...+3^{30}<2*3^{35}-1</cmath> | ||
+ | <cmath>1+...+3^{25}<2*3^{30}-3^{-5}</cmath> | ||
+ | Repeating this process over and over, we eventually get (while ignoring the extremely small fractions left over) | ||
+ | <cmath>1<2*3^{5}</cmath> | ||
+ | which confirms that this satisfies our upper bound. Thus <math>a=21,n=5</math>, so <math>x_14=3^{a+14n}\rightarrow3^{91}</math>. We then get the requested answer, <math>\log_3(3^{91})=\boxed{091}</math> ~ amcrunner | ||
== See also == | == See also == | ||
Line 22: | Line 53: | ||
[[Category:Intermediate Algebra Problems]] | [[Category:Intermediate Algebra Problems]] | ||
+ | {{MAA Notice}} |
Latest revision as of 11:22, 8 January 2024
Problem
The increasing geometric sequence consists entirely of integral powers of Given that
and
find
Solution
Suppose that , and that the common ratio between the terms is .
The first conditions tells us that . Using the rules of logarithms, we can simplify that to . Thus, . Since all of the terms of the geometric sequence are integral powers of , we know that both and must be powers of 3. Denote and . We find that . The possible positive integral pairs of are .
The second condition tells us that . Using the sum formula for a geometric series and substituting and , this simplifies to . The fractional part . Thus, we need . Checking the pairs above, only is close.
Our solution is therefore .
Solution 2
All these integral powers of are all different, thus in base the sum of these powers would consist of s and s. Thus the largest value must be in order to preserve the givens. Then we find by the given that , and we know that the exponents of are in an arithmetic sequence. Thus , and . Thus .
Solution 3
Like above, we use logarithmic identities to convert the problem into workable equations. We begin by labelling the powers of 3. Call , , ..., as , , and ... respectively. With this format we can rewrite the first given equation as . Simplify to get . (1)
Now, rewrite the second given equation as . Obviously, , aka because there are some small fractional change that is left over. This means is . Thinking about the geometric sequence, it's clear each consecutive value of will be either a power of three times smaller or larger. In other words, the earliest values of will be negligible compared to the last values of . Even in the best case scenario, where the common ratio is 3, the values left of are not enough to sum to a value greater than 2 times (amount needed to raise the power of 3 by 1). This confirms that . (2)
Use equations 1 and 2 to get and .
-jackshi2006
Solution 4 (dum)
Proceed as in Solution 3 for the first few steps. We have the sequence . As stated above, we then get that , from which we simplify to . From here, we just go brute force using the second statement (that ). Rearranging the equation from earlier, we get from which it is clear that is a multiple of . Testing the first few values of , we get: Case 1 () The sequence is then , which breaks the upper bound. Case 2 () The sequence is then , which also breaks the upper bound. Case 3 () This is the first reasonable one, giving . It seems like this would break the upper bound, but from some testing we get: Repeating this process over and over, we eventually get (while ignoring the extremely small fractions left over) which confirms that this satisfies our upper bound. Thus , so . We then get the requested answer, ~ amcrunner
See also
2007 AIME II (Problems • Answer Key • Resources) | ||
Preceded by Problem 11 |
Followed by Problem 13 | |
1 • 2 • 3 • 4 • 5 • 6 • 7 • 8 • 9 • 10 • 11 • 12 • 13 • 14 • 15 | ||
All AIME Problems and Solutions |
The problems on this page are copyrighted by the Mathematical Association of America's American Mathematics Competitions.