Frederico Guizini S. Feb 6, 2017 See the answer below:

You are integrating with respect to x, not (1+x^2). It is why it doesn't work the way you think. U-substitution makes this possible. So in a way it is kind of what you expect. Just a little ...

Gaurav Aug 15, 2014 \displaystyle=\frac{{x}^{{3}}}{{3}}+{x}^{{2}}+{x}+{C} , where \displaystyle{C} is a constant Explanation : \displaystyle{I}=\int{\left({1}+{x}\right)}^{{2}}{\left.{d}{x}\right.} ...

\displaystyle{4}{x}^{{3}}+{c} Explanation: \displaystyle\int{12}{x}^{{2}}{\left.{d}{x}\right.}={12}\int{x}^{{2}}{\left.{d}{x}\right.} \displaystyle={12}\cdot\frac{{x}^{{{2}+{1}}}}{{{2}+{1}}}+{c} ...

The function is continuous and strictly decreasing, so U_n=\sum_{k=0}^{n-1}\frac{2^{(k+1)/n}-2^{k/n}}{2^{2k/n}}\\ L_n=\sum_{h=0}^{n-1}\frac{2^{(h+1)/n}-2^{h/n}}{2^{2(h+1)/n}} Thus U_n=\sum_{k=0}^{n-1}\frac{2^{1/n}-1}{2^{k/n}}=(2^{1/n}-1)\cdot\frac{2^{-n/n}-1}{2^{-1/n}-1}=(2^{1/n}-1)\frac{-\frac12}{2^{-1/n}(1-2^{1/n})}=2^{(1-n)/n} ...

You can, just make sure you have a +C because logs and complex numbers are ugly wrt branch cuts. What you wrote is another form of \tan^{-1}(x). In general though, logs and complex numbers ...