5.5 The Substitution Rule/69

${\displaystyle \int _{0}^{1}\left({\frac {e^{z}+1}{e^{z}+z}}\right)}$

${\displaystyle {\begin{aligned}u&=e^{z}+z\\[2ex]du&=(e^{z}+1)dx\\[2ex]\end{aligned}}}$

New upper limit: ${\displaystyle 1=e^{1}+1=e+1}$
New lower limit: ${\displaystyle 0=e^{0}+0=1}$

Failed to parse (unknown function "\abs"): {\displaystyle \begin{align} \int_{0}^{1} \left(\frac{e^z + 1}{e^z + z}\right) &= \int_{0}^{1} \left((e^z +1)dx (\frac{1}{e^z +z}) \right) &= \int_{1}^{e+1} \left(\frac{1}{u}\right)du &= \left(\ln (\abs(u)) \right) |bigg \end{align} }