Transcript Lecture 3.5

Polynomial And Rational Functions
Copyright © Cengage Learning. All rights reserved.
3.5
Complex Numbers
Copyright © Cengage Learning. All rights reserved.
Objectives
► Arithmetic Operations on Complex Numbers
► Square Roots of Negative Numbers
► Complex Solutions of Quadratic Equations
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Complex Numbers
If the discriminant of a quadratic equation is negative, the
equation has no real solution. For example, the equation
x2 + 4 = 0
has no real solution. If we try to solve this equation, we get
x2 = –4, so
But this is impossible, since the square of any real number
is positive. [For example,(–2)2 = 4, a positive number.]
Thus, negative numbers don’t have real square roots.
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Complex Numbers
To make it possible to solve all quadratic equations,
mathematicians invented an expanded number system,
called the complex number system.
First they defined the new number
This means that i 2 = –1.
A complex number is then a number of the form a + bi,
where a and b are real numbers.
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Complex Numbers
Note that both the real and imaginary parts of a complex
number are real numbers.
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Example 1 – Complex Numbers
The following are examples of complex numbers.
3 + 4i
Real part 3, imaginary part 4
Real part , imaginary part
6i
Real part 0, imaginary part 6
–7
Real part –7, imaginary part 0
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Arithmetic Operations on
Complex Numbers
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Arithmetic Operations on Complex Numbers
Complex numbers are added, subtracted, multiplied, and
divided just as we would any number of the form a + b
The only difference that we need to keep in mind is that
i2 = –1. Thus, the following calculations are valid.
(a + bi)(c + di) = ac + (ad + bc)i + bdi2
Multiply and collect like
terms
= ac + (ad + bc)i + bd(–1)
I2 = –1
= (ac – bd) + (ad + bc)i
Combine real and
imaginary parts
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Arithmetic Operations on Complex Numbers
We therefore define the sum, difference, and product of
complex numbers as follows.
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Example 2 – Adding, Subtracting, and Multiplying Complex Numbers
Express the following in the form a + bi.
(a) (3 + 5i) + (4 – 2i)
(b) (3 + 5i) – (4 – 2i)
(c) (3 + 5i)(4 – 2i)
(d) i23
Solution:
(a) According to the definition, we add the real parts and
we add the imaginary parts.
(3 + 5i) + (4 – 2i) = (3 + 4) + (5 – 2)i
= 7 + 3i
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Example 2 – Solution
cont’d
(b) (3 + 5i) – (4 – 2i) = (3 – 4) + [5 –(– 2)]i
= –1 + 7i
(c) (3 + 5i)(4 – 2i) = [3  4 – 5 (– 2)] + [3(– 2) + 5  4]i
= 22 + 14i
(d) i23 = i22+1 = (i2)11i = (–1)11i = (–1)i = –i
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Arithmetic Operations on Complex Numbers
Division of complex numbers is much like rationalizing the
denominator of a radical expression.
For the complex number z = a + bi we define its complex
conjugate to be
z = a – bi.
Note that
z  z = (a + bi)(a – bi) = a2 + b2
So the product of a complex number and its conjugate is
always a nonnegative real number.
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Arithmetic Operations on Complex Numbers
We use this property to divide complex numbers.
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Example 3 – Dividing Complex Numbers
Express the following in the form a + bi.
(a)
(b)
Solution:
We multiply both the numerator and denominator by the
complex conjugate of the denominator to make the new
denominator a real number.
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Example 3 – Solution
cont’d
(a) The complex conjugate of 1 – 2i is 1 – 2i = 1 + 2i.
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Example 3 – Solution
cont’d
(b) The complex conjugate of 4i is –4i.
Therefore,
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Square Roots of Negative
Numbers
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Square Roots of Negative Numbers
Just as every positive real number r has two square roots
(
and –
), every negative number has two square
roots as well.
If –r is a negative number, then its square roots are
i , because
= i2r and
= (–1)2i2r = –r.
We usually write
with
instead of
to avoid confusion
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Example 4 – Square Roots of Negative Numbers
(a)
(b)
(c)
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Square Roots of Negative Numbers
Special care must be taken in performing calculations that
involve square roots of negative numbers.
Although
when a and b are positive, this is
not true when both are negative.
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Square Roots of Negative Numbers
For example,
but
so
When multiplying radicals of negative numbers, express
them first in the form
(where r > 0) to avoid possible
errors of this type.
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Complex Solutions of
Quadratic Equations
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Complex Solutions of Quadratic Equations
We have already seen that if a  0, then the solutions of the
quadratic equation ax2 + bx + c = 0 are
If b2 – 4ac < 0, then the equation has no real solution.
But in the complex number system, this equation will
always have solutions, because negative numbers have
square roots in this expanded setting.
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Example 6 – Quadratic Equations with Complex Solutions
Solve each equation.
(a) x2 + 9 = 0
(b) x2 + 4x + 5 = 0
Solution:
(a) The equation x2 + 9 = 0 means x2 = – 9, so
x=
=
=  3i
The solutions are therefore 3i and – 3i.
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Example 6 – Solution
cont’d
(b) By the Quadratic Formula we have
x
= –2  i
So the solutions are –2 + i and –2 – i.
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Complex Solutions of Quadratic Equations
We see from Example 6 that if a quadratic equation with
real coefficients has complex solutions, then these
solutions are complex conjugates of each other.
So if a + bi is a solution, then a – bi is also a solution.
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