Difference between revisions of "1993 AIME Problems/Problem 5"

Revision as of 05:39, 31 May 2025

Problem

Let $P_0(x) = x^3 + 313x^2 - 77x - 8\,$ . For integers $n \ge 1\,$ , define $P_n(x) = P_{n - 1}(x - n)\,$ . What is the coefficient of $x\,$ in $P_{20}(x)\,$ ?

Solution 1

Notice that $\begin{align*}P_{20}(x) &= P_{19}(x - 20)\\ &= P_{18}((x - 20) - 19)\\ &= P_{17}(((x - 20) - 19) - 18)\\ &= \cdots\\ &= P_0(x - (20 + 19 + 18 + \ldots + 2 + 1)).\end{align*}$

Using the formula for the sum of the first $n$ numbers, $1 + 2 + \cdots + 20 = \frac{20(20+1)}{2} = 210$ . Therefore, $P_{20}(x) = P_0(x - 210).$

Substituting $x - 210$ into the function definition, we get $P_0(x-210) = (x - 210)^3 + 313(x - 210)^2 - 77(x - 210) - 8$ . We only need the coefficients of the linear terms, which we can find by the binomial theorem.

$(x-210)^3$ will have a linear term of ${3\choose1}210^2x = 630 \cdot 210x$ .
$313(x-210)^2$ will have a linear term of $-313 \cdot {2\choose1}210x = -626 \cdot 210x$ .
$-77(x-210)$ will have a linear term of $-77x$ .

Adding up the coefficients, we get $630 \cdot 210 - 626 \cdot 210 - 77 = \boxed{763}$ .

Solution 3 (Overkill)

Denote the coefficient of term $x^m$ of polynomial $P_n(x)$ as $c_{m, n}$ . We can see that $c_{2, 0} = 313$ , $c_{1, 0} = -77$ , and $c_{0, 0} = -8$ . Note that $(x-n)^3 = x^3-3nx^2+3n^2x-n^3$ and $(x-n)^2 = x^2-2nx+n^2$ When substituting $x-1$ for $x$ in $P_0(x)$ , we get that $P_1(x) = P_0(x-1) = (x^3-3x^2+3x-1) + 313(x^2-2x+1) -77(x-1) -8$ . Observe that $c_{2,1} = c_{2,0} - 3(1) = 313 - 3 = 310$ It is evident that $c_{2,n} = c_{2,n-1} - 3n$ Define the generating function $C_2(X)$ as $C_2(X) := \sum_{n \geq 0} c_{2,n}X^n$ By multiplying both sides of the previous recurrence relation and taking the sum of the terms $\forall n\geq 1$ , we get that $\implies \sum_{n\geq1} c_{2,n}X^n = \sum_{n\geq1}c_{2,n-1}X^n + 3\sum_{n\geq1}nX^n$ $\implies \sum_{n\geq0} c_{2,n}X^n - c_{2,0} = X\sum_{n\geq0}c_{2,n}X^n + 3\sum_{n\geq1}nX^n$ $\implies C_2(X) - 313 = XC_2(X) + 3\cdot \frac{X}{(1-X)^2}^*$ $\implies C_2(X) = \frac{313}{1-X} - \frac{3X}{(1-X)^3}$ $= \frac{313X^2 - 629X + 313}{(1-X)^3} = (313X^2 - 629X + 313) \cdot \sum_{n\geq0}{n+2 \choose 2}X^n\ ^\dagger$ $\implies c_{2,n} = 313{n+2 \choose 2} - 629{n+1 \choose 2} + 313{n \choose 2}^\ddagger = \frac{-3n^2 - 3n + 626}{2}$ We can perform a similar analysis on $c_{1,n}$ to get the recurrence relation $c_{1,n} = c_{1, n-1} + c_{2,n-1}\cdot(-2n) + 3n^2$ $= c_{1, n-1} +3n^3 - 626n$ Define the generating function $C_1(X)$ as $C_1(X) := \sum_{n\geq0}c_{1,n}X^n$ We can then perform this process again on our new recurrence relation: $\implies \sum_{n\geq1} c_{1,n}X^n = \sum_{n\geq1}c_{1,n-1}X^n + 3\sum_{n\geq1}n^3X^n - 626\sum_{n\geq1}nX^n$ $\implies \sum_{n\geq0} c_{1,n}X^n - c_{1,0} = X\sum_{n\geq0}c_{1,n}X^n + 3\sum_{n\geq1}n^3X^n - 626\sum_{n\geq1}nX^n$ $\implies C_1(X) + 77 = XC_1(X) + 3\cdot \frac{X(X^2+4X+1)}{(1-X)^4} - 626\cdot \frac{X}{(1-X)^2}$ $\implies C_1(X) = \frac{-77(1-X)^4 + 3X(X^2+4X+1) - 626X(1-X)^2}{(1-X)^5}$ $= \frac{-77X^4-315X^3+802X^2-315X-77}{(1-X)^5}$ $=(-77X^4-315X^3+802X^2-315X-77) \cdot \sum_{n\geq0}{n+5 \choose 5}X^n$ $\implies c_{1,n} = -77{n+4 \choose 4} - 315{n+3 \choose 4} + 802{n+2 \choose 4} - 315{n+1 \choose 4} -77{n \choose 4}$ $= \frac{3n^4+6n^3-1249n^2-1252n-308}{4}$ Finally, we can plug $n=20$ into our new explicit formula to get $c_{1,20} = \boxed{763}$ $^*$ This can be calculated by differentiating the generating function of the sequence 1, 1, 1, ... $(\sum_{n\geq0}X^n)$ and multiplying by $X$ .

$^\dagger$ This form can be found by applying Newton's generalized binomial theorem.

$^\ddagger$ This formula can be found by convolving the polynomial with the series.

- MathCactus0_0 (don't try this on a test unless you can't think of anything else!!!)

@@ Line 14: / Line 14: @@
 *<math>-77(x-210)</math> will have a linear term of <math>-77x</math>.
 Adding up the coefficients, we get <math>630 \cdot 210 - 626 \cdot 210 - 77 = \boxed{763}</math>.
-== Solution 2 ==
-Notice the transformation of <math>P_{n-1}(x)\to P_n(x)</math> adds <math>n</math> to the roots. Thus, all these transformations will take the roots and add <math>1+2+\cdots+20=210</math> to them. (Indeed, this is very easy to check in general.)
-Let the roots be <math>r_1,r_2,r_3.</math> Then <math>P_{20}(x)=(x-r_1-210)(x-r_2-210)(x-r_3-210).</math> By Vieta's/expanding/common sense, you see the coefficient of <math>x</math> is <math>(r_1+210)(r_2+210)+(r_2+210)(r_3+210)+(r_3+210)(r_1+210).</math> Expanding yields <math>r_1r_2+r_2r_3+r_3r_1+210\cdot 2(r_1+r_2+r_3)+3\cdot 210^2.</math> Using Vieta's (again) and plugging stuff in yields <math>-77+210\cdot 2\cdot -313+3\cdot 210^2=\boxed{763}.</math>
 == Solution 3 (Overkill) ==

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Difference between revisions of "1993 AIME Problems/Problem 5"

Revision as of 05:39, 31 May 2025

Contents

Problem

Solution 1

Solution 3 (Overkill)

See also