Difference between revisions of "2017 AMC 12B Problems/Problem 23"

Revision as of 11:48, 3 July 2024

Problem

The graph of $y=f(x)$ , where $f(x)$ is a polynomial of degree $3$ , contains points $A(2,4)$ , $B(3,9)$ , and $C(4,16)$ . Lines $AB$ , $AC$ , and $BC$ intersect the graph again at points $D$ , $E$ , and $F$ , respectively, and the sum of the $x$ -coordinates of $D$ , $E$ , and $F$ is 24. What is $f(0)$ ?

$\textbf{(A)}\quad {-2} \qquad \qquad \textbf{(B)}\quad 0 \qquad\qquad \textbf{(C)}\quad 2 \qquad\qquad \textbf{(D)}\quad \dfrac{24}5 \qquad\qquad\textbf{(E)}\quad 8$

Solution 1

Note that $f(x) - x^2$ has roots $2, 3$ , and $4$ . Therefore, we may write $f(x) = a(x-2)(x-3)(x-4) +x^2$ . Now we find that lines $AB$ , $AC$ , and $BC$ are defined by the equations $y = 5x - 6$ , $y= 6x-8$ , and $y=7x-12$ respectively.

Since we want to find the $x$ -coordinates of the intersections of these lines and $f(x)$ , we set each of them to $f(x)$ and synthetically divide by the solutions we already know exist.

In the case of line $AB$ , we may write $a(x-2)(x-3)(x-4)+x^2-5x+6 = a(x-2)(x-3)(x-r_1)$ for some real number $r_1$ . Dividing both sides by $(x-2)(x-3)$ gives $a(x-4)+1 = a(x-r_1)$ or $r_1 = \frac {4a-1}{a}$ .

For line $AC$ , we have $a(x-2)(x-3)(x-4)+x^2-6x+8 = a(x-2)(x-4)(x-r_2)$ for some real number $r_2$ , which gives $a(x-3)+1 = a(x-r_2)$ or $r_2 = \frac {3a-1}{a}$ .

For line $BC$ , we have $a(x-2)(x-3)(x-4)+x^2-7x+12 = a(x-3)(x-4)(x-r_3)$ for some real number $r_3$ , which gives $a(x-2)+1 = a(x-r_3)$ or $r_3 = \frac {2a-1}{a}$ .

Since $r_1 + r_2 + r_3 = 24$ , we have $\frac {4a-1}{a} + \frac {3a-1}{a} + \frac {2a-1}{a} = 24$ or $\frac {9a-3}{a} = 24$ . Solving for $a$ gives $a = - \frac{1}{5}$ .

Substituting this back into the original equation, we get $f(x) = -\frac{1}{5}(x-2)(x-3)(x-4) + x^2$ , and $f(0) = -\frac{1}{5}(-2)(-3)(-4) + 0 = \boxed{\textbf{(D)}\frac{24}{5}}$

Solution by vedadehhc

Solution 2

$\boxed{\textbf{No need to find the equations for the lines, really.}}$ First of all, $f(x) = a(x-2)(x-3)(x-4) +x^2$ . Let's say the line $AB$ is $y=bx+c$ , and $x_1$ is the $x$ coordinate of the third intersection, then $2$ , $3$ , and $x_1$ are the three roots of $f(x) - bx-c$ . The values of $b$ and $c$ have no effect on the sum of the 3 roots, because the coefficient of the $x^2$ term is always $-9a+1$ . So we have $\frac{9a-1}{a} = 2 + 3 + x_1= 3 + 4 + x_2 = 2 + 4 + x_3$ Adding all three equations up, we get $3\left(\frac{9a-1}{a}\right) = 18 + x_1 + x_2 + x_3 = 18 + 24$ Solving this equation, we get $a = -\frac{1}{5}$ . We finish as Solution 1 does. $\boxed{\textbf{(D)}\frac{24}{5}}$ .

- Mathdummy

Cleaned up by SSding

@@ Line 13: / Line 13: @@
 For line <math>AC</math>, we have <math>a(x-2)(x-3)(x-4)+x^2-6x+8 = a(x-2)(x-4)(x-r_2)</math> for some real number <math>r_2</math>, which gives <math>a(x-3)+1 = a(x-r_2)</math> or <math>r_2 = \frac {3a-1}{a}</math>.
-For line <math>AC</math>, we have <math>a(x-2)(x-3)(x-4)+x^2-7x+12 = a(x-3)(x-4)(x-r_3)</math> for some real number <math>r_3</math>, which gives <math>a(x-2)+1 = a(x-r_3)</math> or <math>r_3 = \frac {2a-1}{a}</math>.
+For line <math>BC</math>, we have <math>a(x-2)(x-3)(x-4)+x^2-7x+12 = a(x-3)(x-4)(x-r_3)</math> for some real number <math>r_3</math>, which gives <math>a(x-2)+1 = a(x-r_3)</math> or <math>r_3 = \frac {2a-1}{a}</math>.
 Since <math>r_1 + r_2 + r_3 = 24</math>, we have <math> \frac {4a-1}{a} + \frac {3a-1}{a} + \frac {2a-1}{a} = 24</math> or <math> \frac {9a-3}{a} = 24</math>. Solving for <math>a</math> gives <math>a = - \frac{1}{5}</math>.

2017 AMC 12B (Problems • Answer Key • Resources)
Preceded by Problem 22	Followed by Problem 24
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Difference between revisions of "2017 AMC 12B Problems/Problem 23"

Revision as of 11:48, 3 July 2024

Contents

Problem

Solution 1

Solution 2

See Also