Evaluate the integral: \(∫_1^2(\frac 1x-\frac {1}{2x^2})e^{2x}\ dx\)
Solution and Explanation
\(∫_1^2(\frac 1x-\frac {1}{2x^2})e^{2x}\ dx\)
\(Let\ 2x=t ⇒ 2dx=dt\)
\(When \ x = 1, t = 2 \ and\ when \ x = 2, t = 4\)
∴\(∫_1^2(\frac 1x-\frac {1}{2x^2})e^{2x}\ dx\) = \(\frac 12∫_2^4(\frac 2t-\frac {2}{t^2})e^t\ dt\)
\(Let \ \frac 1t=ƒ(t)\)
\(Then,\ ƒ(t)=-\frac {1}{t^2}\)
\(⇒\)\(∫_2^4(\frac 1t-\frac {1}{t^2})e^t\ dt\) = \(∫_2^24e^t[ƒ(t)+ƒ'(t)]dt\)
= \([e^tƒ(t)]_2^4\)
= \([e^t.\frac 2t]_2^4\)
= \([\frac {e^t}{t}]_2^4\)
= \(\frac {e^4}{4}-\frac {e^2}{2}\)
= \(\frac {e^2(e^2-2)}{4}\)
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Concepts Used:
Integration by Parts
Integration by Parts is a mode of integrating 2 functions, when they multiplied with each other. For two functions ‘u’ and ‘v’, the formula is as follows:
∫u v dx = u∫v dx −∫u' (∫v dx) dx
- u is the first function u(x)
- v is the second function v(x)
- u' is the derivative of the function u(x)
The first function ‘u’ is used in the following order (ILATE):
- 'I' : Inverse Trigonometric Functions
- ‘L’ : Logarithmic Functions
- ‘A’ : Algebraic Functions
- ‘T’ : Trigonometric Functions
- ‘E’ : Exponential Functions
The rule as a diagram:
