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| <math> | | <math> |
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| \int_{1}^{64}\frac{1+\sqrt[3]{x}}\sqrt{x}dx | | \int_{1}^{64}\frac{1+\sqrt[3]{x}}\sqrt{x}dx = \int_{1}^{64}\left(\frac{1}{x^{1/2}} + \frac{x^{1/3}}{x^{1/2}}\right)dx |
| = \int_{1}^{64}\left(\frac{1}{x^{1/2}} + \frac{x^{1/3}}{x^{1/2}}\right)dx | | = \int_{1}^{64}\left(x^{-1/2}+x^{\frac{1}{3}-{\frac{1}{2}}}\right)dx = \int_{1}^{64}(x^{-\frac{1}{2}}+x^{-\frac{1}{6}})dx |
| \int_{1}^{64}\left(x^{-1/2}+x^{\frac{1}{3}-{\frac{1}{2}}}\right)dx | |
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| </math> = <math>\int_{1}^{64}x^{-\frac{1}{2}}+x^{-\frac{1}{6}}</math>
| | </math> |
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| Add one to the exponents and divide by the new exponent | | Add one to the exponents and divide by the new exponent |
Revision as of 16:17, 21 September 2022
![{\displaystyle \int _{1}^{64}{\frac {1+{\sqrt[{3}]{x}}}{\sqrt {x}}}dx=\int _{1}^{64}\left({\frac {1}{x^{1/2}}}+{\frac {x^{1/3}}{x^{1/2}}}\right)dx=\int _{1}^{64}\left(x^{-1/2}+x^{{\frac {1}{3}}-{\frac {1}{2}}}\right)dx=\int _{1}^{64}(x^{-{\frac {1}{2}}}+x^{-{\frac {1}{6}}})dx}](https://en.wikipedia.org/api/rest_v1/media/math/render/svg/5ac20de0f16ad7da5a5aeacb233d65f52d67b1a0)
Add one to the exponents and divide by the new exponent
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