5.6 Integrals involving exponential and logarithmic functions (Page 3/4)

Calculus volume 1 Page 3 / 4

Suppose the rate of growth of the fly population is given by $g (t) = e^{0.01 t},$ and the initial fly population is 100 flies. How many flies are in the population after 15 days?

There are 116 flies.

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Evaluating a definite integral using substitution

Evaluate the definite integral using substitution: $\int_{1}^{2} \frac{e^{1 / x}}{x^{2}} d x .$

This problem requires some rewriting to simplify applying the properties. First, rewrite the exponent on e as a power of x , then bring the x ² in the denominator up to the numerator using a negative exponent. We have

\int_{1}^{2} \frac{e^{1 / x}}{x^{2}} d x = \int_{1}^{2} e^{x^{−1}} x^{−2} d x .

Let $u = x^{−1},$ the exponent on e . Then

\begin{matrix} d u & = − x^{−2} d x \\ - d u & = x^{−2} d x . \end{matrix}

Bringing the negative sign outside the integral sign, the problem now reads

− \int e^{u} d u .

Next, change the limits of integration:

\begin{array}{l} u = {(1)}^{−1} = 1 \\ u = {(2)}^{−1} = \frac{1}{2} . \end{array}

Notice that now the limits begin with the larger number, meaning we must multiply by −1 and interchange the limits. Thus,

\begin{array}{l} − \int_{1}^{1 / 2} e^{u} d u & = \int_{1 / 2}^{1} e^{u} d u \\ = e^{u} |_{1 / 2}^{1} \\ = e - e^{1 / 2} \\ = e - \sqrt{e} . \end{array}

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Evaluate the definite integral using substitution: $\int_{1}^{2} \frac{1}{x^{3}} e^{4 x^{−2}} d x .$

$\int_{1}^{2} \frac{1}{x^{3}} e^{4 x^{−2}} d x = \frac{1}{8} [e^{4} - e]$

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Integrals involving logarithmic functions

Integrating functions of the form $f (x) = x^{−1}$ result in the absolute value of the natural log function, as shown in the following rule. Integral formulas for other logarithmic functions, such as $f (x) = ln x$ and $f (x) = {log}_{a} x,$ are also included in the rule.

Rule: integration formulas involving logarithmic functions

The following formulas can be used to evaluate integrals involving logarithmic functions.

\begin{matrix} \int x^{−1} d x & = & ln | x | + C \\ \int ln x d x & = & x ln x - x + C = x (ln x - 1) + C \\ \int {log}_{a} x d x & = & \frac{x}{ln a} (ln x - 1) + C \end{matrix}

Finding an antiderivative involving $ln x$

Find the antiderivative of the function $\frac{3}{x - 10} .$

First factor the 3 outside the integral symbol. Then use the u ⁻¹ rule. Thus,

\begin{array}{l} \int \frac{3}{x - 10} d x & = 3 \int \frac{1}{x - 10} d x \\ = 3 \int \frac{d u}{u} \\ = 3 ln | u | + C \\ = 3 ln | x - 10 | + C, x \neq 10 . \end{array}

See [link] .

A graph of the function f(x) = 3 / (x – 10). There is an asymptote at x=10. The first segment is a decreasing concave down curve that approaches 0 as x goes to negative infinity and approaches negative infinity as x goes to 10. The second segment is a decreasing concave up curve that approaches infinity as x goes to 10 and approaches 0 as x approaches infinity. — The domain of this function is $x \neq 10 .$

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Find the antiderivative of $\frac{1}{x + 2} .$

$ln | x + 2 | + C$

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Finding an antiderivative of a rational function

Find the antiderivative of $\frac{2 x^{3} + 3 x}{x^{4} + 3 x^{2}} .$

This can be rewritten as $\int (2 x^{3} + 3 x) {(x^{4} + 3 x^{2})}^{−1} d x .$ Use substitution. Let $u = x^{4} + 3 x^{2},$ then $d u = 4 x^{3} + 6 x .$ Alter du by factoring out the 2. Thus,

\begin{matrix} d u & = & (4 x^{3} + 6 x) d x \\ = & 2 (2 x^{3} + 3 x) d x \\ \frac{1}{2} d u & = & (2 x^{3} + 3 x) d x . \end{matrix}

Rewrite the integrand in u :

\int (2 x^{3} + 3 x) {(x^{4} + 3 x^{2})}^{−1} d x = \frac{1}{2} \int u^{−1} d u .

Then we have

\begin{array}{l} \frac{1}{2} \int u^{−1} d u & = \frac{1}{2} ln | u | + C \\ = \frac{1}{2} ln | x^{4} + 3 x^{2} | + C . \end{array}

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Finding an antiderivative of a logarithmic function

Find the antiderivative of the log function ${log}_{2} x .$

Follow the format in the formula listed in the rule on integration formulas involving logarithmic functions. Based on this format, we have

\int {log}_{2} x d x = \frac{x}{ln 2} (ln x - 1) + C .

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Find the antiderivative of ${log}_{3} x .$

$\frac{x}{ln 3} (ln x - 1) + C$

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[link] is a definite integral of a trigonometric function. With trigonometric functions, we often have to apply a trigonometric property or an identity before we can move forward. Finding the right form of the integrand is usually the key to a smooth integration.

Evaluating a definite integral

Find the definite integral of $\int_{0}^{π / 2} \frac{sin x}{1 + cos x} d x .$

We need substitution to evaluate this problem. Let $u = 1 + cos x,,$ so $d u = − sin x d x .$ Rewrite the integral in terms of u , changing the limits of integration as well. Thus,

\begin{matrix} u = 1 + cos (0) = 2 \\ u = 1 + cos (\frac{π}{2}) = 1 . \end{matrix}

Then

\begin{matrix} \int_{0}^{π / 2} \frac{sin x}{1 + cos x} & = − \int_{2}^{1} u^{−1} d u \\ = \int_{1}^{2} u^{−1} d u \\ = {ln | u | |}_{1}^{2} \\ = [ln 2 - ln 1] \\ = ln 2. \end{matrix}

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Key concepts

Exponential and logarithmic functions arise in many real-world applications, especially those involving growth and decay.
Substitution is often used to evaluate integrals involving exponential functions or logarithms.

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Source: OpenStax, Calculus volume 1. OpenStax CNX. Feb 05, 2016 Download for free at http://cnx.org/content/col11964/1.2

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5.6 Integrals involving exponential and logarithmic functions (Page 3/4)

Evaluating a definite integral using substitution

Integrals involving logarithmic functions

Rule: integration formulas involving logarithmic functions

Finding an antiderivative involving ln x

Finding an antiderivative of a rational function

Finding an antiderivative of a logarithmic function

Evaluating a definite integral

Key concepts

Questions & Answers

Read also:

Get Jobilize Job Search Mobile App in your pocket Now!

Finding an antiderivative involving $ln x$