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

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<math>
<math>
f(t) = te^{-t^2} \quad [0, 5] \\
f(t) = te^{-t^2} \quad [0, 5] \\
\begin{align}
f_{avg} = \frac{1}{5}\int_{0}^{5}te^{-t^2}\,dx
\end{align}


</math>
</math>

Revision as of 18:42, 16 December 2022

Failed to parse (syntax error): {\displaystyle f(t) = te^{-t^2} \quad [0, 5] \\ }

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