5.3 The Fundamental Theorem of Calculus/8: Difference between revisions

Revision as of 20:13, 23 August 2022

$g(x)=\int _{3}^{x}e^{t^{2}-t}dt$
${\frac {d}{dx}}\left[\int _{3}^{x}e^{t^{2}-t}dt\right]=1e^{x^{2}-x}-0e^{(0)^{2}-0}=e^{x^{2}-x}$
Therefore, $g'(x)=e^{x^{2}-x}$

@@ Line 1: / Line 1: @@
 <math>g(x)=\int_{3}^{x}e^{t^2-t}dt</math><br>
-<math>\frac{d}{dx}\left[\int_{3}^{x}e^{t^2-t}dt\right]=1e^{x^2-x}-0e^{(0)^2-0}=e^{x^2-x}</math>
+<math>\frac{d}{dx}\left[\int_{3}^{x}e^{t^2-t}dt\right]=1e^{x^2-x}-0e^{(0)^2-0}=e^{x^2-x}</math><br>
-therefore, <math>g'(x)=e^{x^2-x}</math>
+Therefore, <math>g'(x)=e^{x^2-x}</math>

5.3 The Fundamental Theorem of Calculus/8: Difference between revisions

Revision as of 20:13, 23 August 2022

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