From Burton Tech. Points Wiki
Jump to navigation
Jump to search
|
|
| Line 22: |
Line 22: |
| &= \int_{1}^{e+1} \left(\frac{1}{u}\right)du \\[2ex] | | &= \int_{1}^{e+1} \left(\frac{1}{u}\right)du \\[2ex] |
| &= \left(\ln (|u|) \right) \bigg|_{1}^{e+1} \\[2ex] | | &= \left(\ln (|u|) \right) \bigg|_{1}^{e+1} \\[2ex] |
| &= \ln (|e+1|) - \ln (|1|) | | &= \ln (|e+1|) - \ln (|1|) \\[2ex] |
| &= \ln(e+1) - 0 = \ln (e+1) | | &= \ln(e+1) - 0 = \ln (e+1) |
|
| |
|
| \end{align} | | \end{align} |
| </math> | | </math> |
Latest revision as of 16:03, 6 September 2022
![{\displaystyle {\begin{aligned}u&=e^{z}+z\\[2ex]du&=(e^{z}+1)dx\\[2ex]\end{aligned}}}](https://en.wikipedia.org/api/rest_v1/media/math/render/svg/88d16614472a3960a39988c31fd5c7ab6cc6c295)
New upper limit: 
New lower limit: 
![{\displaystyle {\begin{aligned}\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)\\[2ex]&=\int _{1}^{e+1}\left({\frac {1}{u}}\right)du\\[2ex]&=\left(\ln(|u|)\right){\bigg |}_{1}^{e+1}\\[2ex]&=\ln(|e+1|)-\ln(|1|)\\[2ex]&=\ln(e+1)-0=\ln(e+1)\end{aligned}}}](https://en.wikipedia.org/api/rest_v1/media/math/render/svg/074d4566497dc2376c9dd8efbb4dfe5973a1accb)