2
$\begingroup$

Part 1 of the question

Hey again,

I hope that I was able to solve my problem. This is my solution with the example of Part 1 of the question. Is that correct or did I forget anything?

$$ \int \sqrt{(\sum\limits_{k=0}^{n}c_k x^k)^2} dx $$

$z_1,z_2,...,z_q$ are the real roots of $\sum\limits_{k=0}^{n}c_k x^k$

sgn(x) is the signum function

$$= \frac{x \sqrt{(\sum\limits_{k=0}^{n}c_k x^k)^2} (\sum\limits_{k=0}^{n}c_k x^k (\prod\limits_{m=0, m\neq k}^{n}m+1))}{(\prod\limits_{k=0}^{n}k+1) (\sum\limits_{k=0}^{n}c_k x^k)} + (\sum\limits_{p=1}^{q}sgn(x-z_p) \lim_{x \to z_p^-}(\frac{x \sqrt{(\sum\limits_{k=0}^{n}c_k x^k)^2} (\sum\limits_{k=0}^{n}c_k x^k (\prod\limits_{m=0, m\neq k}^{n}m+1))}{(\prod\limits_{k=0}^{n}k+1) (\sum\limits_{k=0}^{n}c_k x^k)}))$$

Example: $n=2, c_0=-1, c_1=0, c_2=1$

$z_1 = -1, z_2 = 1$

$$\int \sqrt{(\sum\limits_{k=0}^{2}c_k x^k)^2} = \sqrt{(x^2-1)^2}dx$$

$$=\frac{\sqrt{(x^2-1)^2} (x^3-3x)}{3*(x^2-1)} + \frac{2}{3} (sgn(x+1)+sgn(x-1))$$

  • 4
    Please, please, please take the advice I gave you yesterday, and go to those links I listed, and learn how to format mathematics for this site. Honestly, you'll be glad you did.2012-11-08
  • 2
    It's latex now.2012-11-08
  • 1
    Good! Now I'd suggest removing all those asterisks --- $ab$ is better than $a*b$.2012-11-08
  • 1
    Also done. no * anymore.2012-11-08

0 Answers 0