5.3 The Fundamental Theorem of Calculus/13: Difference between revisions

Latest revision as of 20:15, 6 September 2022

$h(x)=\int _{2}^{1/x}\arctan(t)dt$

${\frac {d}{dx}}\left[h(x)\right]={\frac {d}{dx}}\left[\int _{2}^{1/x}\arctan(t)dt\right]={\frac {-1}{x^{2}}}\cdot \left(\arctan \left({\frac {1}{x}}\right)\right)-0\cdot (\arctan \left(2)\right)={\frac {-\arctan {\frac {1}{x}}}{x^{2}}}$

${\text{Therefore, }}h'(x)={\frac {-\arctan {\frac {1}{x}}}{x^{2}}}$

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	=\frac{-\arctan\frac{1}{x}}{x^2}</math> <br><br>		=\frac{-\arctan\frac{1}{x}}{x^2}</math> <br><br>

	<math>\text{Therefore, } g'(x)=</math>		<math>\text{Therefore, } h'(x)=\frac{-\arctan\frac{1}{x}}{x^2}</math>

5.3 The Fundamental Theorem of Calculus/13: Difference between revisions

Latest revision as of 20:15, 6 September 2022

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