Lar calc10 ch05_sec3

Logarithmic, Exponential, and
Other Transcendental Functions
Copyright © Cengage Learning. All rights reserved.

Inverse Functions
Copyright © Cengage Learning. All rights reserved.

3
Objectives
 Verify that one function is the inverse function of another
function.
 Determine whether a function has an inverse function.
 Find the derivative of an inverse function.

5
Inverse Functions
The function f(x) = x + 3 from A = {1, 2, 3, 4} to B = {4, 5, 6, 7}
can be written as
By interchanging the first and second coordinates of each
ordered pair, you can form the inverse function of f. This
function is denoted by f –1. It is a function from B to A, and
can be written as

6
Note that the domain of f is equal to the range of f –1, and
vice versa, as shown in Figure 5.10. The functions f and f –1
have the effect of “undoing” each other. That is, when you
form the composition of f with f –1 or the composition of f –1
with f, you obtain the identity function.
f(f –1(x)) = x and f –1(f(x)) = x
Figure 5.10
Inverse Functions

8
Inverse Functions
Here are some important observations about inverse
functions.
1. If g is the inverse function of f, then f is the inverse
function of g.
2. The domain of f –1 is equal to the range of f, and the
range of f –1 is equal to the domain of f.
3. A function need not have an inverse function, but if it
does, the inverse function is unique.

9
Inverse Functions
You can think of f –1 as undoing what has been done by f.
For example, subtraction can be used to undo addition, and
division can be used to undo multiplication. So,
are inverse functions of each other and
are inverse functions of each other.

10
Example 1 – Verifying Inverse Functions
Show that the functions are inverse functions of each other.
and
Solution:
Because the domains and ranges of both f and g consist of
all real numbers, you can conclude that both composite
functions exist for all x.
The composition of f with g is given by

11
The composition of g with f is given by
cont'd
Example 1 – Solution

12
Because f(g(x)) = x and g(f(x)) = x, you can conclude that
f and g are inverse functions of each other
(see Figure 5.11).
Figure 5.11
cont'd

13
Inverse Functions
In Figure 5.11, the graphs of f and g = f –1 appear to be
mirror images of each other with respect to the line y = x.
The graph of f –1 is a reflection of the graph of f in the line
y = x.

14
Inverse Functions
This idea is generalized in the next theorem.
Figure 5.12

15
Existence of an Inverse Function

16
Not every function has an inverse function, and Theorem
5.6 suggests a graphical test for those that do—the
Horizontal Line Test for an inverse function.
This test states that a function f has an inverse function if
and only if every horizontal line intersects the graph of f at
most once (see Figure 5.13).
Figure 5.13

17
The next theorem formally states why the Horizontal Line
Test is valid.

18
Example 2(a) – The Existence of an Inverse Function
From the graph of f (x) = x3 + x – 1 shown in Figure 5.14
(a), it appears that f is increasing over its entire domain. To
verify this, note that the derivative, f'(x) = 3x2 + 1, is positive
for all real values of x. So, f is strictly monotonic, and it must
have an inverse function.
Figure 5.14(a)

19
Example 2(b) – The Existence of an Inverse Function
From the graph of f (x) = x3 – x + 1 shown in Figure 5.14
(b), you can see that the function does not pass the
Horizontal Line Test. In other words, it is not one-to-one.
For instance, f has the same value when x = –1, 0, and 1.
So, by Theorem 5.7, f does not have an inverse function.
Figure 5.14(b)
cont'd

20
The following guidelines suggest a procedure for finding an
inverse function.

21
Example 3 – Finding an Inverse Function
Find the inverse function of
Solution:
From the graph of f in Figure 5.15,
it appears that f is increasing over
its entire domain, .
To verify this, note that
is positive on the domain of f.
So, f is strictly monotonic and it
must have an inverse function. Figure 5.15

cont'd
22
To find an equation for the inverse function, let y = f (x) and
solve for x in terms of y.

23
The domain of f –1 is the range of f which is .
You can verify this result as shown.
cont'd

24
Suppose you are given a function that is not one-to-one on
its domain.
By restricting the domain to an interval on which the
function is strictly monotonic, you can conclude that the
new function is one-to-one on the restricted domain.

25
Example 4 – Testing Whether a Function Is One-to-One
Show that the sine function
f(x) = sin x
is not one-to-one on the entire real line. Then show that
[–π/2, π/2] is the largest interval, centered at the origin, on
which f is strictly monotonic.

26
It is clear that f is not one-to-one, because many different
x-values yield the same y-value.
For instance,
sin(0) = 0 = sin(π)
Moreover, f is increasing on the open interval (–π/2, π/2),
because its derivative
f'(x) = cos x
is positive there.

27
Finally, because the left and right endpoints correspond to
relative extrema of the sine function, you can conclude that
f is increasing on the closed interval [–π/2, π/2] and that on
any larger interval the function is not strictly monotonic
(see Figure 5.16).
Figure 5.16
cont'd

28
Derivative of an Inverse Function

29
The next two theorems discuss the derivative of an inverse
function.

30

31
Example 5 – Evaluating the Derivative of an Inverse Function
Let
a. What is the value of f –1(x) when x = 3?
b. What is the value of (f –1)'(x) when x = 3?
Solution:
Notice that f is one-to-one and therefore has an inverse
function.
a. Because f(x) = 3 when x = 2, you know that f –1(3) = 2

cont'd
32
b. Because the function f is differentiable and has an
inverse function, you can apply Theorem 5.9
(with g = f –1) to write
Moreover, using you can conclude that

33
In Example 5, note that at the point (2, 3) the slope of the
graph of f is 4 and at the point (3, 2) the slope of the graph
of f –1 is as shown in Figure 5.17.
Figure 5.17

34
In general, if y = g(x) = f –1(x), then f(y) = x and f'(y) = .
Theorem 5.9 says that
This reciprocal relationship is sometimes written as

35
Example 6 – Graphs of Inverse Functions Have Reciprocal Slopes
Let f(x) = x2 (for x ≥ 0) and let . Show that the
slopes of the graphs of f and f –1 are reciprocals at each of
the following points.
a. (2, 4) and (4, 2) b. (3, 9) and (9, 3)
Solution:
The derivative of f and f –1 are given by
f'(x) = 2x and
a. At (2, 4), the slope of the graph of f is f'(2) = 2(2) = 4.
At (4, 2), the slope of the graph of f –1 is

36
b. At (3, 9), the slope of the graph of f is f'(3) = 2(3) = 6.
At (9, 3), the slope of the graph of f –1 is
So, in both cases, the slopes are
reciprocals, as shown in Figure 5.18.
Figure 5.18
cont'd

Lar calc10 ch05_sec3

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