Formula for Integration by Parts
If u and v are two functions of x, then the formula for integration by parts is โ
\(\int\) u.v dx = u \(\int\) v dx โ \(\int\)[\(du\over dx\).\(\int\)v dx]dx
i.e The integral of the product of two functions = (first function) \(\times\) (Integral of Second function) โ Integral of { (Diff. of first function) \(\times\) (Integral of Second function)}
Note โย We can choose the first function as the function which comes first in the word ILATE,ย whereย
I โ Stands for the Inverse Trigonometric Function
L โ Stands for the Logarithmic Function
A โ Stands for the Algebraic Function
T โ Stands for the Trigonometric Function
E โ Stands for the Exponential Function
Example : Solve the integral \(\int\) \(x sin3x\) dx using the formula for integration by parts.
Solution : Here both the functions viz. x and sin3x are easily integrable and the derivative of x is one, a less complicated function. Therefore, we take x as the first function and sin3x as the second function.
\(\therefore\) I = \(\int\) x cos3x dx
= x [\(\int\) sin3x dx] โ \(\int\)[\({d\over dx}(x)\) \(\times\) \(\int\)sin3x dx] dx
= x (\(-1\over 3\) cos3x) โ \(\int\) [\(-1\over 3\) cos3x] dx
\(\implies\) I = \(-1\over 3\) xcos3x + \(1\over 3\) \(\int\) cos3x dx
\(\implies\) I = -\(1\over 3\) xcos3x + \(1\over 9\) sin3x + C
Example : Solve the integral \(\int\) \(x sin^{-1}x\) dx using the formula for integration by parts.
Solution : Taking \(sin^{-1}x\) as the first function and x as the second function by using the ILATE rule.
I = \(\int\) \(x sin^{-1}x\)
= (\(sin^{-1}x\))\(x^2\over 2\) โ \(\int\)[\(1\over \sqrt{1-x^2}\) \(\times\) \(x^2\over 2\)] dx
= \(x^2\over 2\)(\(sin^{-1}x\)) + \(1\over 2\) \(\int\)[\((-x)^2\over \sqrt{1-x^2}\) dx = \(x^2\over 2\)(\(sin^{-1}x\)) + \(1\over 2\) \(\int\)[\({1-x^2-1}\over \sqrt{1-x^2}\) dx
\(\implies\) I = \(x^2\over 2\)(\(sin^{-1}x\)) + \(1\over 2\) {\(\int\)[\({1-x^2}\over \sqrt{1-x^2}\) dx โ \(1\over \sqrt{1-x^2}\) dx}
\(\implies\) I = \(x^2\over 2\)(\(sin^{-1}x\)) + \(1\over 2\) {\(\int\)[\(\sqrt{1-x^2}\) dx โ \(1\over \sqrt{1-x^2}\) dx}
I = \(x^2\over 2\)(\(sin^{-1}x\)) + \(1\over 2\) {\({1\over 2}x\)[\(\sqrt{1-x^2}\) dx + \(1\over 2\) \(\sin^{-1}x\) โ \(sin^{-1}x\)] + C
\(\implies\) I = \(x^2\over 2\)(\(sin^{-1}x\)) + \(1\over 4\)\(x \sqrt{1-x^2}\) dx โ \(1\over 4\) \(\sin^{-1}x\) + C
Hope you learnt what is the formula for integration by parts, learn more concepts of Indefinite Integration and practice more questions to get ahead in the competition. Good luck!