Difference between revisions of "Integrals Resulting in Inverse Trigonometric Functions"

${\displaystyle \int {\frac {du}{\sqrt {a^{2}-u^{2}}}}=\arcsin \left({\frac {u}{a}}\right)+C}$

${\displaystyle \int {\frac {du}{a^{2}+u^{2}}}={\dfrac {1}{a}}\arctan \left({\dfrac {u}{a}}\right)+C}$

${\displaystyle \int {\frac {du}{u{\sqrt {u^{2}-a^{2}}}}}={\frac {1}{a}}\operatorname {arcsec} \left({\dfrac {|u|}{a}}\right)+C}$

Example 1

Evaluate the integral

${\displaystyle \int {\dfrac {dx}{\sqrt {4-9x^{2}}}}.}$

Solution

Substitute ${\displaystyle u=3x}$. Then ${\displaystyle du=3dx}$ and we have

${\displaystyle \int {\dfrac {dx}{\sqrt {4-9x^{2}}}}={\dfrac {1}{3}}\int {\dfrac {du}{\sqrt {4-u^{2}}}}.}$

Applying the formula with ${\displaystyle a=2,}$ we obtain

${\displaystyle \int {\dfrac {dx}{\sqrt {4-9x^{2}}}}={\dfrac {1}{3}}\int {\dfrac {du}{\sqrt {4-u^{2}}}}={\dfrac {1}{3}}\arcsin \left({\dfrac {u}{2}}\right)+C={\dfrac {1}{3}}\arcsin \left({\dfrac {3x}{2}}\right)+C.}$

Example 2

Evaluate ${\displaystyle \int {\frac {4-x}{\sqrt {16-x^{2}}}}{\text{dx}}}$.

Solution

This integral requires two different methods to evaluate it. We get to those methods by splitting up the integral:

${\displaystyle \int {\frac {4-x}{\sqrt {16-x^{2}}}}{\text{dx}}=\int {\frac {4}{\sqrt {16-x^{2}}}}{\text{dx}}-\int {\frac {x}{\sqrt {16-x^{2}}}}{\text{dx}}}$

The first integral is handled straightforward; the second integral is handled by substitution, with ${\displaystyle u=16-x^{2}}$. We handle each separately.

${\displaystyle \int {\frac {4}{\sqrt {16-x^{2}}}}{\text{dx}}=4\arcsin {\frac {x}{4}}+C.}$

${\displaystyle \int {\frac {x}{\sqrt {16-x^{2}}}}{\text{dx}}}$: Set ${\displaystyle u=16-x^{2}}$, so ${\displaystyle {\text{du}}=-2x{\text{dx}}}$ and ${\displaystyle x{\text{dx}}=-{\text{du}}/2}$. We have

${\displaystyle {\begin{aligned}\int {\frac {x}{\sqrt {16-x^{2}}}}{\text{dx}}=\int {\frac {-{\text{du}}/2}{\sqrt {u}}}\\=-{\frac {1}{2}}\int {\frac {1}{\sqrt {u}}}{\text{du}}\\=-{\sqrt {u}}+C\\=-{\sqrt {16-x^{2}}}+C.\end{aligned}}}$

Combining these together, we have

${\displaystyle \int {\frac {4-x}{\sqrt {16-x^{2}}}}{\text{dx}}=4\arcsin {\frac {x}{4}}+{\sqrt {16-x^{2}}}+C.}$

Resources

• Integration into Inverse trigonometric functions using Substitution by The Organic Chemistry Tutor

• Integrating using Inverse Trigonometric Functions by patrickJMT

Licensing

Content obtained and/or adapted from:

• Integrals Resulting in Inverse Trigonometric Functions, LibreTexts: Mathematics under a CC BY-SA-NC license