6.5 Average Value of a Function/5: Difference between revisions

Latest revision as of 19:46, 16 December 2022

$f(t)=te^{-t^{2}}\quad [0,5]$

${\begin{aligned}f_{avg}&={\frac {1}{5}}\int _{0}^{5}te^{-t^{2}}\,dx={\frac {1}{5}}\int _{0}^{5}-{\frac {1}{2}}(e^{u})\,du\\[2ex]&={\frac {1}{5}}\int _{0}^{25}e^{u}(-{\frac {1}{2}}du)={\frac {1}{10}}\int _{-25}^{0}e^{u}\,du\\[2ex]&={\frac {1}{10}}e^{u}{\bigg |}_{-25}^{0}={\frac {1}{10}}-{\frac {1}{10}}e^{-25}={\frac {1}{10}}(1-e^{-25})\\[2ex]\end{aligned}}$

${\begin{aligned}&u=t^{2}\\[2ex]&{\frac {du}{dt}}=2t\\[2ex]&du=-2t\cdot {dt}\\[2ex]&-{\frac {1}{2}}du=t\cdot {dt}\\[2ex]\end{aligned}}$

@@ Line 1: / Line 1: @@
 <math>
-f(x) = \{t}{(4x)}\text{,}\quad [-\pi, \pi]
+f(t) = te^{-t^2} \quad [0, 5]
+</math>
+<math>
+\begin{align}
+f_{avg} &= \frac{1}{5}\int_{0}^{5}te^{-t^2}\,dx = \frac{1}{5}\int_{0}^{5}-\frac{1}{2}(e^u)\,du \\[2ex]
+&= \frac{1}{5}\int_{0}^{25}e^u(-\frac{1}{2}du) = \frac{1}{10}\int_{-25}^{0}e^u\,du  \\[2ex]
+&= \frac{1}{10}e^u \bigg|_{-25}^{0} = \frac{1}{10}-\frac{1}{10}e^{-25} = \frac{1}{10}(1-e^{-25}) \\[2ex]
+\end{align}
+</math>
+<math>
+\begin{align}
+& u=t^2 \\[2ex]
+& \frac{du}{dt}=2t \\[2ex]
+& du=-2t\cdot{dt} \\[2ex]
+& -\frac{1}{2}du=t\cdot{dt} \\[2ex]
+\end{align}
 </math>

6.5 Average Value of a Function/5: Difference between revisions

Latest revision as of 19:46, 16 December 2022

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