5.4 Indefinite Integrals and the Net Change Theorem/1: Difference between revisions

Revision as of 17:12, 25 August 2022

$\int {\frac {x}{\sqrt {x^{2}+1}}}dx={\sqrt {x^{2}+1}}+c$

${\frac {d}{dx}}\left[(x^{2}+1)^{\frac {1}{2}}+c\right]={\frac {x}{\sqrt {x^{2}+1}}}$

${\begin{aligned}a&=x^{2}+1&b=&=a^{1/2}\\[0.6ex]v&={\tfrac {1}{\sqrt {2}}}(x-y)\qquad &y&={\tfrac {1}{\sqrt {2}}}(u-v)\end{aligned}}$

let $a=x^{2}+1$ and $b=a^{1/2}$ then ${\frac {da}{dx}}=2x{\text{ and }}{\frac {db}{da}}={\frac {1}{2}}a^{-1/2}$

${\frac {da}{dx}}\cdot {\frac {db}{da}}=\left(2x\right)\left({\frac {1}{2}}a^{-1/2}\right)=xa^{-1/2}=x(x^{2}+1)^{-1/2}={\frac {x}{\sqrt {x^{2}+1}}}$

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 <math>\begin{align}
-a & = x^2+1 & x &= \tfrac{1}{\sqrt{2}}(u+v) \\[0.6ex]
+a & = x^2+1 & b= &= a^{1/2} \\[0.6ex]
 v & = \tfrac{1}{\sqrt{2}}(x-y) \qquad & y &= \tfrac{1}{\sqrt{2}}(u-v)
 \end{align}</math>