\displaystyle\int{\left({x}^{{2}}+{1}\right)}^{{3}}{\left.{d}{x}\right.}=\frac{{1}}{{7}}{x}^{{7}}+\frac{{3}}{{5}}{x}^{{5}}+{x}^{{3}}+{x}+{C} Explanation: It's probably most straightforward to ...

We know that, If function \displaystyle{f} is odd and continous in \displaystyle{\left[-{a},{a}\right]} , then \displaystyle{\left({\int_{{-{{a}}}}^{{a}}}{f{{\left({x}\right)}}}{\left.{d}{x}\right.}={0},{a}\in{R}^{+}\right.} ...

Konstantinos Michailidis Oct 11, 2015 If we expand the product \displaystyle{x}^{{2}}\cdot{\left({x}^{{3}}+{1}\right)}^{{3}} we get \displaystyle{x}^{{11}}+{3}{x}^{{8}}+{3}{x}^{{5}}+{x}^{{2}} ...

You can split it the integral into: The integral of (x^2)dx Added to The integral of 4xdx Added to The integral of 13dx which gives you: x^3 / 3 + 2x^2 + 13x + C

You can’t, because this integral is nonsense. It is kind of difficult to imagine any integral of the following form : \displaystyle\int_0^x f(x) dx If x is a real number that is in the ...

\displaystyle\int{\left({x}^{{2}}+{1}\right)}^{{2}}{\left.{d}{x}\right.}=\frac{{x}^{{5}}}{{5}}+{2}\frac{{x}^{{3}}}{{3}}+{x}+{c} Explanation: \displaystyle\int{\left({x}^{{2}}+{1}\right)}^{{2}}{\left.{d}{x}\right.}= ...