5.3 The Fundamental Theorem of Calculus/17: Difference between revisions

Revision as of 20:26, 6 September 2022

$g(x)=\int _{1-3x}^{1}{\frac {u^{3}}{(1+u^{2})}}du$

${\frac {d}{dx}}(g(x))={\frac {d}{dx}}\left(\int _{1-3x}^{1}{\frac {u^{3}}{(1+u^{2})}}du\right)=(0)\cdot {\frac {(1)^{3}}{(1+(1)^{2})}}-(-3)\cdot {\frac {(1-3x)^{3}}{(1+(1-3x)^{2})}}$

${\text{Therefore, }}g'(x)=y^{2}\sin {(y)}$

@@ Line 3: / Line 3: @@
 <math>
-\frac{d}{dx}(g(x))=\frac{d}{dx}\left(\int_{1-3x}^{1}\frac{u^3}{(1+u^2)} du\right) = (0)\cdot\frac{(1-3x)^3}{(1+(1-3x)^2)}
+\frac{d}{dx}(g(x))=\frac{d}{dx}\left(\int_{1-3x}^{1}\frac{u^3}{(1+u^2)} du\right) = (0)\cdot\frac{(1)^3}{(1+(1)^2)}
--(-3)\cdot\frac{(-3)^3}{(1+(-3)^2)}
+-(-3)\cdot\frac{(1-3x)^3}{(1+(1-3x)^2)}
 </math>

5.3 The Fundamental Theorem of Calculus/17: Difference between revisions

Revision as of 20:26, 6 September 2022

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