2020 AIME I Problems/Problem 14

Problem

Let $P(x)$ be a quadratic polynomial with complex coefficients whose $x^2$ coefficient is $1.$ Suppose the equation $P(P(x))=0$ has four distinct solutions, $x=3,4,a,b.$ Find the sum of all possible values of $(a+b)^2.$

Solution 1

Either $P(3) = P(4)$ or not. We first see that if $P(3) = P(4)$ it's easy to obtain by Vieta's that $(a+b)^2 = 49$ . Now, take $P(3) \neq P(4)$ and WLOG $P(3) = P(a), P(4) = P(b)$ . Now, consider the parabola formed by the graph of $P$ . It has vertex $\frac{3+a}{2}$ . Now, say that $P(x) = x^2 - (3+a)x + c$ . We note $P(3)P(4) = c = P(3)(4 - 4a + \frac{8a - 1}{2}) \implies a = \frac{7P(3) + 1}{8}$ . Now, we note $P(4) = \frac{7}{2}$ by plugging in again. Now, it's easy to find that $a = -2.5, b = -3.5$ , yielding a value of $36$ . Finally, we add $49 + 36 = \boxed{085}$ . ~awang11, charmander3333

Solution 2

Let the roots of $P(x)$ be $m$ and $n$ , then we can write $P(x)=x^2-(m+n)x+mn$ . The fact that $P(P(x))=0$ has solutions $x=3,4,a,b$ implies that some combination of $2$ of these are the solution to $P(x)=m$ , and the other $2$ are the solution to $P(x)=n$ . It's fairly easy to see there are only $2$ possible such groupings: $P(3)=P(4)=m$ and $P(a)=P(b)=n$ , or $P(3)=P(a)=m$ and $P(4)=P(b)=n$ (Note that $a,b$ are interchangeable, and so are $m$ and $n$ ). We now to casework: If $P(3)=P(4)=m$ , then $9-3(m+n)+mn=16-4(m+n)+mn=m \implies m+n=7$ $a^2-a(m+n)+mn=b^2-b(m+n)+mn=n \implies a+b=m+n=7$ so this gives $(a+b)^2=7^2=49$ . Next, if $P(3)=P(a)=m$ , then $9-3(m+n)+mn=a^2-a(m+n)+mn=m \implies a+3=m+n$ $16-4(m+n)+mn=b^2-b(m+n)+mn=n \implies b+4=m+n$ Subtracting the first part of the first equation from the first part of the second equation gives $7-(m+n)=n-m \implies 2n=7 \implies n=\frac{7}{2} \implies m=-3$ Hence, $a+b=2(m+n)-7=2\cdot \frac{1}{2}-7=-6$ , and so $(a+b)^2=(-6)^2=36$ . Therefore, the solution is $49+36=\boxed{085}$ ~ktong

2020 AIME I (Problems • Answer Key • Resources)
Preceded by Problem 13	Followed by Problem 15
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2020 AIME I Problems/Problem 14

Contents

Problem

Solution 1

Solution 2

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