8.5 Polar Form of Complex Numbers - Precalculus 2e | OpenStax (2024)

From the origin, move two units in the positive horizontal direction and three units in the negative vertical direction. See Figure 1.

Figure 1

Using the formula, we have

$$\begin{array}{l}\left|z\right|=\sqrt{x^2+y^2}\hfill \\ \left|z\right|=\sqrt{{\left(\sqrt{5}\right)}^2+{\left(-1\right)}^2}\hfill \\ \left|z\right|=\sqrt{5+1}\hfill \\ \left|z\right|=\sqrt{6}\hfill \end{array}$$

See Figure 3.

Figure 3

Using the formula, we have

$$\begin{array}{l}\left|z\right|=\sqrt{x^2+y^2}\hfill \\ \left|z\right|=\sqrt{{\left(3\right)}^2+{\left(-4\right)}^2}\hfill \\ \left|z\right|=\sqrt{9+16}\hfill \\ \begin{array}{l}\left|z\right|=\sqrt{25}\\ \left|z\right|=5\end{array}\hfill \end{array}$$

The absolute value $z$ is 5. See Figure 4.

Figure 4

On the complex plane, the number $z=4i$ is the same as $z=0+4i.$ Writing it in polar form, we have to calculate $r$ first.

$$\begin{array}{l}r=\sqrt{x^2+y^2}\hfill \\ r=\sqrt{0^2+4^2}\hfill \\ r=\sqrt{16}\hfill \\ r=4\hfill \end{array}$$

Next, we look at $x.$ If $x=r\cos \theta ,$ and $x=0,$ then $\theta =\frac{\pi }{2}.$ In polar coordinates, the complex number $z=0+4i$ can be written as $z=4\left(\cos \left(\frac{\pi }{2}\right)+i\sin \left(\frac{\pi }{2}\right)\right)$ or $4\text{cis}\left(\frac{\pi }{2}\right).$ See Figure 6.

Figure 6

First, find the value of $r.$

$$\begin{array}{l}r=\sqrt{x^2+y^2}\hfill \\ r=\sqrt{{\left(-4\right)}^2+\left(4^2\right)}\hfill \\ r=\sqrt{32}\hfill \\ r=4\sqrt{2}\hfill \end{array}$$

Find the angle $\theta$ using the formula:

$$\begin{array}{l}\cos \theta =\frac{x}{r}\hfill \\ \cos \theta =\frac{-4}{4\sqrt{2}}\hfill \\ \cos \theta =-\frac{1}{\sqrt{2}}\hfill \\ \theta ={\cos }^{-1}\left(-\frac{1}{\sqrt{2}}\right)=\frac{3\pi }{4}\hfill \end{array}$$

Thus, the solution is $4\sqrt{2}\text{cis}\left(\frac{3\pi }{4}\right).$

We begin by evaluating the trigonometric expressions.

$$\cos \left(\frac{\pi }{6}\right)=\frac{\sqrt{3}}{2}\text{and}\sin \left(\frac{\pi }{6}\right)=\frac{1}{2}$$

After substitution, the complex number is

$$z=12\left(\frac{\sqrt{3}}{2}+\frac{1}{2}i\right)$$

We apply the distributive property:

$$\begin{array}{l}z=12\left(\frac{\sqrt{3}}{2}+\frac{1}{2}i\right)\hfill \\ =\left(12\right)\frac{\sqrt{3}}{2}+\left(12\right)\frac{1}{2}i\hfill \\ =6\sqrt{3}+6i\hfill \end{array}$$

The rectangular form of the given point in complex form is $6\sqrt{3}+6i.$

If $\tan \theta =\frac{5}{12},$ and $\tan \theta =\frac{y}{x},$ we first determine $r=\sqrt{x^2+y^2}=\sqrt{{12}^2+5^2}=13\text{.}$ We then find $\cos \theta =\frac{x}{r}$ and $\sin \theta =\frac{y}{r}.$

$$\begin{array}{l}z=13(\cos \theta +i\sin \theta )\hfill \\ =13\left(\frac{12}{13}+\frac{5}{13}i\right)\hfill \\ =12+5i\hfill \end{array}$$

The rectangular form of the given number in complex form is $12+5i.$

Follow the formula

$$\begin{array}{l}{z}_1{z}_2=4\cdot 2[\cos (\mathrm{80°}+\mathrm{145°})+i\sin (\mathrm{80°}+\mathrm{145°})]\hfill \\ z_1{z}_2=8[\cos (\mathrm{225°})+i\sin (\mathrm{225°})]\hfill \\ z_1{z}_2=8\left[\cos \left(\frac{5\pi }{4}\right)+i\sin \left(\frac{5\pi }{4}\right)\right]\hfill \\ z_1{z}_2=8\left[-\frac{\sqrt{2}}{2}+i\left(-\frac{\sqrt{2}}{2}\right)\right]\hfill \\ z_1{z}_2=-4\sqrt{2}-4i\sqrt{2}\hfill \end{array}$$

Using the formula, we have

$$\begin{array}{l}\frac{z_1}{z_2}=\frac{2}{4}[\cos (\mathrm{213°}-\mathrm{33°})+i\sin (\mathrm{213°}-\mathrm{33°})]\hfill \\ \frac{z_1}{z_2}=\frac{1}{2}[\cos (\mathrm{180°})+i\sin (\mathrm{180°})]\hfill \\ \frac{z_1}{z_2}=\frac{1}{2}[-1+0i]\hfill \\ \frac{z_1}{z_2}=-\frac{1}{2}+0i\hfill \\ \frac{z_1}{z_2}=-\frac{1}{2}\hfill \end{array}$$

Since De Moivre’s Theorem applies to complex numbers written in polar form, we must first write $\left(1+i\right)$ in polar form. Let us find $r.$

$$\begin{array}{l}r=\sqrt{x^2+y^2}\hfill \\ r=\sqrt{{\left(1\right)}^2+{\left(1\right)}^2}\hfill \\ r=\sqrt{2}\hfill \end{array}$$

Then we find $\theta .$ Using the formula $\tan \theta =\frac{y}{x}$ gives

$$\begin{array}{l}\tan \theta =\frac{1}{1}\hfill \\ \tan \theta =1\hfill \\ \theta =\frac{\pi }{4}\hfill \end{array}$$

Use De Moivre’s Theorem to evaluate the expression.

$$\begin{array}{l}{(a+bi)}^n=r^n[\cos (n\theta )+i\sin (n\theta )]\hfill \\ {(1+i)}^5={\left(\sqrt{2}\right)}^5\left[\cos \left(5\cdot \frac{\pi }{4}\right)+i\sin \left(5\cdot \frac{\pi }{4}\right)\right]\hfill \\ {(1+i)}^5=4\sqrt{2}\left[\cos \left(\frac{5\pi }{4}\right)+i\sin \left(\frac{5\pi }{4}\right)\right]\hfill \\ {(1+i)}^5=4\sqrt{2}\left[-\frac{\sqrt{2}}{2}+i\left(-\frac{\sqrt{2}}{2}\right)\right]\hfill \\ {(1+i)}^5=-4-4i\hfill \end{array}$$

We have

$$\begin{array}{l}{z}^{\frac{1}{3}}=8^{\frac{1}{3}}\left[\cos \left(\frac{\frac{2\pi }{3}}{3}+\frac{2k\pi }{3}\right)+i\sin \left(\frac{\frac{2\pi }{3}}{3}+\frac{2k\pi }{3}\right)\right]\hfill \\ z^{\frac{1}{3}}=2\left[\cos \left(\frac{2\pi }{9}+\frac{2k\pi }{3}\right)+i\sin \left(\frac{2\pi }{9}+\frac{2k\pi }{3}\right)\right]\hfill \end{array}$$

There will be three roots: $k=0,1,2.$ When $k=0,$ we have

$$z^{\frac{1}{3}}=2\left(\cos \left(\frac{2\pi }{9}\right)+i\sin \left(\frac{2\pi }{9}\right)\right)$$

When $k=1,$ we have

$$\begin{array}{l}{z}^{\frac{1}{3}}=2\left[\cos \left(\frac{2\pi }{9}+\frac{6\pi }{9}\right)+i\sin \left(\frac{2\pi }{9}+\frac{6\pi }{9}\right)\right]\begin{array}{cccc}& & & \end{array}\text{Add}\frac{2(1)\pi }{3}\text{toeachangle.}\hfill \\ z^{\frac{1}{3}}=2\left(\cos \left(\frac{8\pi }{9}\right)+i\sin \left(\frac{8\pi }{9}\right)\right)\hfill \end{array}$$

When $k=2,$ we have

$$\begin{array}{ll}{z}^{\frac{1}{3}}=2\left[\cos \left(\frac{2\pi }{9}+\frac{12\pi }{9}\right)+i\sin \left(\frac{2\pi }{9}+\frac{12\pi }{9}\right)\right]\begin{array}{cccc}& & & \end{array}\hfill & \text{Add}\frac{2(2)\pi }{3}\text{toeachangle.}\hfill \\ z^{\frac{1}{3}}=2\left(\cos \left(\frac{14\pi }{9}\right)+i\sin \left(\frac{14\pi }{9}\right)\right)\hfill & \hfill \end{array}$$

Remember to find the common denominator to simplify fractions in situations like this one. For $k=1,$ the angle simplification is

$$\begin{array}{l}\frac{\frac{2\pi }{3}}{3}+\frac{2(1)\pi }{3}=\frac{2\pi }{3}\left(\frac{1}{3}\right)+\frac{2(1)\pi }{3}\left(\frac{3}{3}\right)\hfill \\ =\frac{2\pi }{9}+\frac{6\pi }{9}\hfill \\ =\frac{8\pi }{9}\hfill \end{array}$$