Newton's Sums

by SomeonecoolLovesMaths, Mar 18, 2024, 5:35 PM

Newton sums give us a clever and efficient way of finding the sums of roots of a polynomial raised to a power. They can also be used to derive several factoring identities.

Statement
Consider a polynomial $P(x)$ of degree $n$,

$P(x) = a_nx^n + a_{n-1}x^{n-1} + \cdots + a_1x + a_0$
Let $P(x)=0$ have roots $x_1,x_2,\ldots,x_n$. Define the sum:

\[P_k = x_1^k + x_2^k + \cdots + x_n^k.\]Newton's sums tell us that,

\[a_nP_1 + a_{n-1} = 0\]\[a_nP_2 + a_{n-1}P_1 + 2a_{n-2}=0\]\[a_nP_3 + a_{n-1}P_2 + a_{n-2}P_1 + 3a_{n-3}=0\]\[\vdots\]\[\boxed{a_nP_k+a_{n-1}P_{k-1}+\cdots+a_{n-k+1}P_1+k\cdot a_{n-k}=0}\](Define $a_j = 0$ for $j<0$.)


We also can write:

\[P_1 = S_1\]\[P_2 = S_1P_1 - 2S_2\]\[P_3 = S_1P_2 - S_2P_1 + 3S_3\]\[P_4 = S_1P_3 - S_2P_2 + S_3P_1 - 4S_4\]\[P_5 = S_1P_4 - S_2P_3 + S_3P_2 - S_4P_1 + 5S_5\]\[\vdots\]where $S_n$ denotes the $n$-th elementary symmetric sum.

Proof
Let $\alpha,\beta,\gamma,...,\omega$ be the roots of a given polynomial $P(x)=a_nx^n+a_{n-1}x^{n-1}+..+a_1x+a_0$. Then, we have that

$P(\alpha)=P(\beta)=P(\gamma)=...=P(\omega)=0$


Thus,


$\begin{cases}a_n\alpha^n+a_{n-1}\alpha^{n-1}+...+a_0=0\\a_n\beta^n+a_{n-1}\beta^{n-1}+...+a_0=0\\~~~~~~~~~~~~~~~~~~\vdots\\a_n\omega^n+a_{n-1}\omega^{n-1}+...+a_0=0\end{cases}$


Multiplying each equation by $\alpha^{k-n},\beta^{k-n},...,\omega^{k-n}$, respectively,


$\begin{cases}a_n\alpha^{n+k-n}+a_{n-1}\alpha^{n-1+k-n}+...+a_0\alpha^{k-n}=0\\a_n\beta^{n+k-n}+a_{n-1}\beta^{n-1+k-n}+...+a_0\beta^{k-n}=0\\~~~~~~~~~~~~~~~~~~\vdots\\a_n\omega^{n+k-n}+a_{n-1}\omega^{n-1+k-n}+...+a_0\omega^{k-n}=0\end{cases}$


$\begin{cases}a_n\alpha^{k}+a_{n-1}\alpha^{k-1}+...+a_0\alpha^{k-n}=0\\a_n\beta^{k}+a_{n-1}\beta^{k-1}+...+a_0\beta^{k-n}=0\\~~~~~~~~~~~~~~~~~~\vdots\\a_n\omega^{k}+a_{n-1}\omega^{k-1}+...+a_0\omega^{k-n}=0\end{cases}$


Sum,


$a_n\underbrace{(\alpha^k+\beta^k+...+\omega^k)}_{P_k}+a_{n-1}\underbrace{(\alpha^{k-1}+\beta^{k-1}+...+\omega^{k-1})}_{P_{k-1}}+a_{n-2}\underbrace{(\alpha^{k-2}+\beta^{k-2}+...+\omega^{k-2})}_{P_{k-2}}+...+a_0\underbrace{(\alpha^{k-n}+\beta^{k-n}+...+\omega^{k-n})}_{P_{k-n}}=0$


Therefore,


\[a_nP_k+a_{n-1}P_{k-1}+a_{n-2}P_{k-2}+...+a_0P_{k-n}=0.\]

Comment

0 Comments

My First Blog

avatar

SomeonecoolLovesMaths
Shouts
Submit

  • I will bookmarked this blog

    by giangtruong13, Yesterday at 7:37 AM

  • W blog op

    by quasar_lord, Mar 10, 2025, 5:32 PM

  • orz blog
    how so orzzzz

    by Erratum, Jan 31, 2025, 9:47 AM

  • shouts; your post is too short , it must be atleast 8 characters

    by mqoi_KOLA, Dec 5, 2024, 6:37 PM

  • Guys it took my like 10 hours to do this! Idk why did I even do this, but now it looks kinda satisfying ngl.

    by SomeonecoolLovesMaths, Nov 25, 2024, 5:07 PM

  • add this one new thing to the intergrals that is lim n tends to infinity b-a/n summation k=1 to n f(a+k(b-a)/n))= int_{a}^b f(x) dx

    by Levieee, Nov 21, 2024, 8:37 PM

  • woahh hi HSM main orz blog!!!

    by eg4334, Nov 17, 2024, 3:31 PM

  • Me in 4 years of Aops - 555 posts.

    This guy in 10 months of Aops - 2608 posts

    by HoRI_DA_GRe8, Oct 17, 2024, 10:22 AM

  • Remember; the one who falls and gets back up is stronger than the ones who never tried... Good luck for next year's IOQM

    by alexanderhamilton124, Oct 15, 2024, 7:03 AM

  • fourth shout

    by QueenArwen, Sep 2, 2024, 4:05 PM

  • Hii
    !!!!!!!!!!!

    by Yummo, Apr 2, 2024, 2:43 PM

  • i am shouting. it is very loud.

    by fruitmonster97, Mar 21, 2024, 7:49 PM

  • real!!!!!

    by SirAppel, Mar 17, 2024, 6:22 PM

13 shouts
Tags
geometry
About Owner
  • Posts: 3139
  • Joined: Dec 22, 2023
Blog Stats
  • Blog created: Mar 17, 2024
  • Total entries: 20
  • Total visits: 1249
  • Total comments: 19
Search Blog
a