Difference between revisions of "2016 AMC 12A Problems/Problem 24"

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-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
 
-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 fr not answering than using this method. Sorry! ~slamgirls~
  
 
==Video Solution by the Art of Problem Solving==
 
==Video Solution by the Art of Problem Solving==

Revision as of 17:35, 16 October 2024

Problem

There is a smallest positive real number $a$ such that there exists a positive real number $b$ such that all the roots of the polynomial $x^3-ax^2+bx-a$ are real. In fact, for this value of $a$ the value of $b$ is unique. What is this value of $b$?

$\textbf{(A)}\ 8\qquad\textbf{(B)}\ 9\qquad\textbf{(C)}\ 10\qquad\textbf{(D)}\ 11\qquad\textbf{(E)}\ 12$


Solution 1 (calculus)

The acceleration must be zero at the $x$-intercept; this intercept must be an inflection point for the minimum $a$ value. Derive $f(x)$ so that the acceleration $f''(x)=0$. Using the power rule, \begin{align*} f(x) &= x^3-ax^2+bx-a \\ f’(x) &= 3x^2-2ax+b \\  f’’(x) &= 6x-2a \end{align*} So $x=\frac{a}{3}$ for the inflection point/root. Furthermore, the slope of the function must be zero - maximum - at the intercept, thus having a triple root at $x=a/3$ (if the slope is greater than zero, there will be two complex roots and we do not want that).

The function with the minimum $a$:

\[f(x)=\left(x-\frac{a}{3}\right)^3\] \[x^3-ax^2+\left(\frac{a^2}{3}\right)x-\frac{a^3}{27}\] Since this is equal to the original equation $x^3-ax^2+bx-a$, equating the coefficients, we get that

\[\frac{a^3}{27}=a\rightarrow a^2=27\rightarrow a=3\sqrt{3}\] \[b=\frac{a^2}{3}=\frac{27}{3}=\boxed{\textbf{(B) }9}\]

The actual function: $f(x)=x^3-\left(3\sqrt{3}\right)x^2+9x-3\sqrt{3}$

$f(x)=0\rightarrow x=\sqrt{3}$ triple root. "Complete the cube."

Solution 2

Let the roots of the polynomial be $r, s, t$. By Vieta's formulas we have $r+s+t=a$, $rs+st+rt=b$, and $rst=a$. Since both $a$ and $b$ are positive, it follows that all 3 roots $r, s, t$ are positive as well, and so we can apply AM-GM to get \[\tfrac 13 (r+s+t) \ge \sqrt[3]{rst} \quad \Rightarrow \quad a \ge 3\sqrt[3]{a}.\] Cubing both sides and then dividing by $a$ (since $a$ is positive we can divide by $a$ and not change the sign of the inequality) yields \[a^2 \ge 27 \quad \Rightarrow \quad a \ge  3\sqrt{3}.\] Thus, the smallest possible value of $a$ is $3\sqrt{3}$ which is achieved when all the roots are equal to $\sqrt{3}$. For this value of $a$, we can use Vieta's to get $b=\boxed{\textbf{(B) }9}$.

Solution 3 (SUPER RISKY) do if you have no time

We see that with cubics, the number $3$ comes up a lot, and as $9=3\cdot3$ has the most relation to $3$, we can assume $b=\boxed{\textbf{(B) }9}$.

-Sorry, but the number $3$ 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 fr 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 (ProblemsAnswer KeyResources)
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

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