Difference between revisions of "2016 AMC 12A Problems/Problem 24"
(→Solution) |
(→Solution 3 (SUPER RISKY) do if you have no time) |
||
(8 intermediate revisions by 6 users not shown) | |||
Line 9: | Line 9: | ||
==Solution 1 (calculus) == | ==Solution 1 (calculus) == | ||
The acceleration must be zero at the <math>x</math>-intercept; this intercept must be an inflection point for the minimum <math>a</math> value. | The acceleration must be zero at the <math>x</math>-intercept; this intercept must be an inflection point for the minimum <math>a</math> value. | ||
− | Derive <math>f(x)</math> so that the acceleration <math>f''(x)=0</math> | + | Derive <math>f(x)</math> so that the acceleration <math>f''(x)=0</math>. Using the power rule, |
− | < | + | <cmath>\begin{align*} |
+ | f(x) &= x^3-ax^2+bx-a \\ | ||
+ | f’(x) &= 3x^2-2ax+b \\ | ||
+ | f’’(x) &= 6x-2a | ||
+ | \end{align*}</cmath> | ||
+ | So <math>x=\frac{a}{3}</math> for the inflection point/root. Furthermore, the slope of the function must be zero - maximum - at the intercept, thus having a triple root at <math>x=a/3</math> (if the slope is greater than zero, there will be two complex roots and we do not want that). | ||
The function with the minimum <math>a</math>: | The function with the minimum <math>a</math>: | ||
Line 16: | Line 21: | ||
<cmath>f(x)=\left(x-\frac{a}{3}\right)^3</cmath> | <cmath>f(x)=\left(x-\frac{a}{3}\right)^3</cmath> | ||
<cmath>x^3-ax^2+\left(\frac{a^2}{3}\right)x-\frac{a^3}{27}</cmath> | <cmath>x^3-ax^2+\left(\frac{a^2}{3}\right)x-\frac{a^3}{27}</cmath> | ||
− | Since this is equal to the original equation <math>x^3-ax^2+bx-a</math>, | + | Since this is equal to the original equation <math>x^3-ax^2+bx-a</math>, equating the coefficients, we get that |
<cmath>\frac{a^3}{27}=a\rightarrow a^2=27\rightarrow a=3\sqrt{3}</cmath> | <cmath>\frac{a^3}{27}=a\rightarrow a^2=27\rightarrow a=3\sqrt{3}</cmath> | ||
Line 26: | Line 31: | ||
<math>f(x)=0\rightarrow x=\sqrt{3}</math> triple root. "Complete the cube." | <math>f(x)=0\rightarrow x=\sqrt{3}</math> triple root. "Complete the cube." | ||
− | + | ==Solution 2== | |
− | Let the roots of the polynomial be <math>r, s, t</math>. By Vieta's formulas we have <math>r+s+t=a | + | Let the roots of the polynomial be <math>r, s, t</math>. By Vieta's formulas we have <math>r+s+t=a</math>, <math>rs+st+rt=b</math>, and <math>rst=a</math>. Since both <math>a</math> and <math>b</math> are positive, it follows that all 3 roots <math>r, s, t</math> are positive as well, and so we can apply AM-GM to get <cmath>\tfrac 13 (r+s+t) \ge \sqrt[3]{rst} \quad \Rightarrow \quad a \ge 3\sqrt[3]{a}.</cmath> Cubing both sides and then dividing by <math>a</math> (since <math>a</math> is positive we can divide by <math>a</math> and not change the sign of the inequality) yields <cmath>a^2 \ge 27 \quad \Rightarrow \quad a \ge 3\sqrt{3}.</cmath> |
Thus, the smallest possible value of <math>a</math> is <math>3\sqrt{3}</math> which is achieved when all the roots are equal to <math>\sqrt{3}</math>. For this value of <math>a</math>, we can use Vieta's to get <math>b=\boxed{\textbf{(B) }9}</math>. | Thus, the smallest possible value of <math>a</math> is <math>3\sqrt{3}</math> which is achieved when all the roots are equal to <math>\sqrt{3}</math>. For this value of <math>a</math>, we can use Vieta's to get <math>b=\boxed{\textbf{(B) }9}</math>. | ||
+ | |||
+ | ==Solution 3 (SUPER RISKY) do if you have no time == | ||
+ | We see that with cubics, the number <math>3</math> comes up a lot, and as <math>9=3\cdot3</math> has the most relation to <math>3</math>, we can assume <math>b=\boxed{\textbf{(B) }9}</math>. | ||
+ | |||
+ | -Sorry, but the number <math>3</math> doesn't actually come up very often as you said, so this solution might not actually be a good idea. ~get-rickrolled | ||
+ | |||
+ | |||
+ | -It's also probably better to get 1.5 points for not answering than using this method. Sorry! ~slamgirls~ | ||
==Video Solution by the Art of Problem Solving== | ==Video Solution by the Art of Problem Solving== |
Latest revision as of 17:36, 16 October 2024
Contents
Problem
There is a smallest positive real number such that there exists a positive real number such that all the roots of the polynomial are real. In fact, for this value of the value of is unique. What is this value of ?
Solution 1 (calculus)
The acceleration must be zero at the -intercept; this intercept must be an inflection point for the minimum value. Derive so that the acceleration . Using the power rule, So for the inflection point/root. Furthermore, the slope of the function must be zero - maximum - at the intercept, thus having a triple root at (if the slope is greater than zero, there will be two complex roots and we do not want that).
The function with the minimum :
Since this is equal to the original equation , equating the coefficients, we get that
The actual function:
triple root. "Complete the cube."
Solution 2
Let the roots of the polynomial be . By Vieta's formulas we have , , and . Since both and are positive, it follows that all 3 roots are positive as well, and so we can apply AM-GM to get Cubing both sides and then dividing by (since is positive we can divide by and not change the sign of the inequality) yields Thus, the smallest possible value of is which is achieved when all the roots are equal to . For this value of , we can use Vieta's to get .
Solution 3 (SUPER RISKY) do if you have no time
We see that with cubics, the number comes up a lot, and as has the most relation to , we can assume .
-Sorry, but the number doesn't actually come up very often as you said, so this solution might not actually be a good idea. ~get-rickrolled
-It's also probably better to get 1.5 points for not answering than using this method. Sorry! ~slamgirls~
Video Solution by the Art of Problem Solving
https://www.youtube.com/watch?v=OkI1HDEj2B8&list=PLyhPcpM8aMvI7N78mYZyatqveRU30iNcf&index=4
- AMBRIGGS
See Also
2016 AMC 12A (Problems • Answer Key • Resources) | |
Preceded by Problem 23 |
Followed by Problem 25 |
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.