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| </math> | | </math> |
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| <math>\int_{0}^{1} \left(x-\frac{1}{4}x)\right|dx + \int_{1}^{2} \left|(\frac{1}{x}-\frac{1}{4}x)\right|dx = \int_{0}^{1} \left|(\frac{3}{4}x)\right|dx + \int_{1}^{2} \left|(\frac{1}{x})\right|dx - \int_{1}^{2} \left|(\frac{1}{4}x)\right|dx = </math> | | |
| | <math>\int_{0}^{1} \left(x-\frac{1}{4}x\right)dx + \int_{1}^{2} \left(\frac{1}{x}-\frac{1}{4}x\right)dx = \int_{0}^{1} \left(\frac{3}{4}x\right)dx + \int_{1}^{2} \left(\frac{1}{x}\right)dx - \int_{1}^{2} \left(\frac{1}{4}x\right)dx |
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| | </math> |
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| <math> | | <math> |
| \begin{align} | | \begin{align} |
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| &= \left[\frac{3x^2}{8}\right]\Bigg|_{0}^{1} + \left[\ln(x)\right]\Bigg|_{1}^{2} - \left[\frac{1}{8} x^2\right]\Bigg|_{1}^{2}= | | |
| &= \left[\frac{3(1)^2}{8}\right] + \left[ln(2)-ln(1)\right] - \left[\frac{1}{8} (2)^2 - \frac{1}{8} (1)^2\right] \\[2ex] | | |
| &= \left[\frac{3}{8}\right] + \left[ln(2)\right] - \left[\frac{3}{8}\right] | | &= \left[\frac{3x^2}{8}\right]\Bigg|_{0}^{1} + \left[\ln|x|\right]\Bigg|_{1}^{2} - \left[\frac{1}{8} x^2\right]\Bigg|_{1}^{2} \\[2ex] |
| | &= \left[\frac{3(1)^2}{8}\right] + \left[ln|2|-ln|1|\right] - \left[\frac{1}{8} (2)^2 - \frac{1}{8} (1)^2\right] \\[2ex] |
| | &= \frac{3}{8} + ln|2| - \frac{3}{8} |
| &= ln(2) | | &= ln(2) |
| \end{align} | | \end{align} |
| </math> | | </math> |
Latest revision as of 19:21, 20 September 2022
![{\displaystyle {\begin{aligned}&=\left[{\frac {3x^{2}}{8}}\right]{\Bigg |}_{0}^{1}+\left[\ln |x|\right]{\Bigg |}_{1}^{2}-\left[{\frac {1}{8}}x^{2}\right]{\Bigg |}_{1}^{2}\\[2ex]&=\left[{\frac {3(1)^{2}}{8}}\right]+\left[ln|2|-ln|1|\right]-\left[{\frac {1}{8}}(2)^{2}-{\frac {1}{8}}(1)^{2}\right]\\[2ex]&={\frac {3}{8}}+ln|2|-{\frac {3}{8}}&=ln(2)\end{aligned}}}](https://en.wikipedia.org/api/rest_v1/media/math/render/svg/74245465395e36719a3629579583cd8d02883a24)
