Calculus: An Integrated Approach to Functions and their Rates of Change, Preliminary Edition Part 67 pdf

For Problems 10 through 14, rewrite each of the following expressions in terms of a positive acute angle.. We can solve for x easily once we define inverse trigonometric functions.. f ha

EXAMPLE 20.5 You’re interested in knowing the height of a very tall tree You position yourself so that

your line of sight to the top of the tree makes a 60◦angle with the horizontal You measure the distance from where you stand to the base of the tree to be 45 feet How tall is the tree? (Assume that your eyes are five feet above the ground.)

SOLUTION We’ll begin with a sketch It’s simplest to call the height of the tree x + 5 feet and find x

5 60°

5 ft.

45 ft.

x

Figure 20.19

x

2

1

45

similar triangles

√3 3 π

3 π

tan (π/3) = x

45

x = 45√3

x

45

√3 =

Figure 20.20

The tree is (45√

3 + 5) feet tall, or approximately 82.9 feet tall

(a) Find all x such that tan x = −1

(b) Find all x such that sin x = 1/2

(c) Find all x on the interval [0, 2π ] such that cos x = −1/2

SOLUTIONS (a) There are several approaches to solving tan x = −1 One approach is to use the unit

circle and interpret tan x as the slope of OP There are two points on the unit circle for which the slope of OP is −1 They are the points of intersection of the line v = −u and the unit circle The points correspond to x =3π4 and x = −π4 Therefore, x =3π4 + 2πn

or x = −π4 + 2πn, where n is any integer

642 CHAPTER 20 Trigonometry—Circles and Triangles

4

3 π

P( (

4 π

P( (

v

u

–

Figure 20.21

(b) We begin by looking for one x-value that will satisfy sin x = 1/2 In our heads dance visions of triangles we know and love We draw one of our all-time favorites and see that x = π6 fits the bill

v

u

2

1

√3

2

1 2

√3 5π 6

π 6

π

6

π 3

(

P( ) =

2 1 2

√3 π

6 ( , (

P( ) = –

Figure 20.22

Draw P π

6 on the unit circle Now use the unit circle to find all points P with v-coordinate 1/2 Using symmetry we see that

P1= P (π/6) =

3

2 ,

1 2

 and P2= P (5π/6) =



−√3

1 2



Therefore, if sin x = 1/2, then

x = π/6 + 2πn or x = 5π/6 + 2πn,

where n is an integer

(c) We begin by looking for one x such that cos x = −1/2 In fact, to begin with let’s not even worry about the negative sign For what x is cos x = 1/2? Again, don’t turn to strangers, turn to a triangle you know and love

u

2

1

√3

2 1 2

√3

π

3

(

P1 = –

2 1

√3 (

,

P2 = – –

2 1 2

√3

3

π 3 π

(

( ,

Q=

Figure 20.23

We see that cos(π/3) = 1/2 Let’s put that on the unit circle We label it Q, because

it is not what we’re looking for By symmetry considerations we can find two points,

P1and P2, with u-coordinate of −1/2 What are the values of x between 0 and 2π that correspond to points P1and P2? The angle between OQ and the positive u-axis

is π/3; the angle between OP1and the negative u-axis is π/3 as well Therefore,

P1= P (π − π/3) = P (2π/3)

We have to go halfway around the unit circle (π radians) to get from Q to P2 Therefore, P2= P (π + π/3) = P (4π/3)

Suppose we were interested in finding some x such that cos x = 0.3 In this case our favorite triangles are useless We do have a few tools at our disposal to approximate x; we could approximate x using a calibrated unit circle or we could graph y = cos x and y = 0.3

on a graphing calculator and approximate a point of intersection It would be much more convenient, however, if we could just “undo” cosine; if we have the inverse function for cos x at our disposal, we can express a solution exactly We turn to inverse trigonometric functions in Section 20.3

P R O B L E M S F O R S E C T I O N 2 0 2

1 Find the following exactly

(a) sin(π/6) (b) sin(π/4) (c) sin(π/3) (d) sin(−π/3) (e) cos(π/3) (f) cos(−π/3) (g) tan(π/4) (h) tan(3π/4) (i) tan(5π/3) (j) sin(−7π/6)

2 (a) For what values of x is tan x =√3?

(b) For what values of x is tan(x) = −√3?

3 Find the exact values of the following.

644 CHAPTER 20 Trigonometry—Circles and Triangles

4 (a) Find an acute angle x such that sin x = 0.5

(b) Find all x between 0 and 2π such that sin x = 0.5

(c) Find an acute angle x such that cos x = 0.5

(d) Find all x ∈ [0, 2π] such that cos(2x) = 0.5

5 Find the lengths of all the sides of the triangle drawn below

2 π 3

6 Fill in the following table

30◦

45◦

60◦

7 Find exact values for each of the following (No calculator—or use it only to check your answers.)

8 A cross-section of a feed trough is shown below Find the area of the cross-section Give an exact answer and then a numerical approximation

2.5 ft

1.5 ft

9 Some kids are sitting on their stoop wondering about the height of a tall street post They estimate that the street post is casting a shadow 15 feet in length and that the angle

of elevation of the sun (from the ground) is about 60◦ Estimate the height of the street post

For Problems 10 through 14, rewrite each of the following expressions in terms of a positive acute angle This positive acute angle is sometimes referred to as a reference angle.

12 (a) cos 130 (b) cos(−130 )

13 (a) cos 200◦ (b) sin(200◦)

14 (a) tan 200◦ (b) tan(−200◦)

20.3 INVERSE TRIGONOMETRIC FUNCTIONS

while chasing a runaway shopping cart down a ramp outside a Manhattan grocery store The curb is 6.5 inches high and the ground from the bottom of the curb to the end of the ramp measures 50 inches New York City law specifies that ramps must have a slope of no more than 5 degrees Was the construction of this ramp in accordance with the law?11

6.5 "

50"

Figure 20.24

We need to find the acute angle x such that tan x =6.550, or tan x = 0.13 To solve for x exactly we need to “undo” the tangent function We can solve for x easily once we define inverse trigonometric functions We’ll do that and then return to the lawyer’s case

Inverse Functions Revisited

Given a function f , its inverse function, f−1, undoes f Recall the following

f has an inverse function only if f is 1-to-1; that is, each output value of the function

is taken on only once If a function is not 1-to-1, we can restrict its domain so that it becomes 1-to-1

If f is 1-to-1, then f−1assigns to each output of f the unique associated input We look for a formula for the inverse function by writing y = f (x), interchanging x and

y(input and output) and solving for y

The graph of f−1(x)can be obtained by interchanging the x- and y-coordinates for every point on the graph of f This is equivalent to reflecting the graph of y = f (x) around the line y = x

We want to define inverse functions for sin x, cos x, and tan x Our first obstacle is that none of these functions is 1-to-1 In fact, because they are all periodic, each output value

in the range corresponds to an infinite number of input values We must restrict the domain for each of them We do so as follows

11

646 CHAPTER 20 Trigonometry—Circles and Triangles

sin x

1 1

–1 –1

π π

2

π 2

–π 2

–π 2

[0, π]

(iii)

sin x:

restricted

2

–π 2

x [ , [

cos x:

x

tan x:

π 2

–π 2

x ( , (

Figure 20.25

In every case we include the interval from 0 to π/2 For sine and cosine we use a continuous half-cycle; for tan x we use an entire continuous cycle Each of these restricted domains includes all possible output values of the function Think about the restricted domains given; they’re fairly natural ones

Once we have restricted the domains, we can obtain the inverse functions Let’s start with y = sin x Interchanging the roles of x and y gives x = sin y What is y? y is the

angle between −π/2 and π/2 whose sine is x We call the inverse function inverse sine,

or arcsine, and denote it by sin−1x or arcsin x Notice that arcsine gives as its output

an angle or a real number corresponding to a directed distance along the unit circle

In radians the measure of the angle and the corresponding arc on the unit circle are identical

Recall the convention that sin−1x refers to the inverse sine function, not to (sin x)−1 When discussing the reciprocal of sin x it is safest to writesin x1 or csc x

We construct the definitions of the other inverse trigonometric functions, arccosine and arctangent, similarly

domain of sine [−π/2, π/2]

range of arcsine

sin x

−→

←−

arcsin x

range

of sine [−1, 1]

domain

of arcsine

domain of tangent (−π/2, π/2) range of arctangent

tan x

−→

←−

arctan x

range of tangent (−∞, ∞) domain of arctangent

The Inverse Trigonometric Functions

D e f i n i t i o n

sin−1xis the angle between −π/2 and π/2 whose sine is x domain of sin−1x: [−1, 1] tan−1xis the angle between −π/2 and π/2 whose tangent is x domain of tan−1x: (−∞, ∞) cos−1xis the angle between 0 and π whose cosine is x domain of cos−1x: [−1, 1]

Below are the graphs of the inverse trigonometric functions.

x

x

x

1 –1

1

1 –1

–1

π 2

π 2

π 2

–π

2 π

Figure 20.26

Observations

sin−1(sin x) = x if x ∈ [−π/2, π/2]

If x is not in [−π/2, π/2] this statement won’t hold For example, sin−1(sin(2π )) = sin−1(0) = 2π The output of arcsine is always an angle between −π/2 and π/2.

sin(sin−1x) = x for all x in the domain of sin−1x

tan−1(tan x) = x if x ∈ (−π/2, π/2)

tan(tan−1x) = x for all x (the domain of tan−1xis (−∞, ∞))

cos−1(cos x) = x if x ∈ [0, π]

cos(cos−1x) = x for all x in the domain of cos−1x

On most calculators the arcsine and sine functions share a key, the arccosine and cosine functions share a key, and the arctangent and tangent functions share a key.12

If A is positive, then

arcsin(A), arccos(A), and arctan(A) are all angles between 0 and π/2 (provided A is

in the function’s domain), and

arcsin(−A) = −arcsin(A), arccos(−A) = π−arccos(A), arctan(−A) = −arctan(A) You can convince yourself of these last three statements by looking at a unit circle together with the appropriate domain restrictions

While it is possible to define inverses of sec x, csc x, and cot x, we will not do so After all, the equation sec x = A/B is equivalent to cos x = B/A

Example 20.7 (continued)

Let’s return to Example 20.7, the problem of the grocery-store ramp and the runaway cart

in New York City We were looking for the acute angle whose tangent is 6.550, or 0.13 We want to solve the equation tan x = 0.13 We can think about this in either of the following ways:

xis the acute angle whose tangent is 0.13, so x = tan−1(0.13) ≈ 0.129 radians,

12 Just as you might wonder how a calculator computes sin 1, you may wonder how your calculator arrives at arcsin(0.3) Again,

it is a good and interesting question Again, the short and somewhat accurate answer is that it uses polynomial approximations of arcsin x.

648 CHAPTER 20 Trigonometry—Circles and Triangles

or

tan x = 0.13 To undo the tangent, take the arctangent of both sides.13 tan−1(tan x) = tan−1(0.13)

x = tan−10.13 ≈ 0.129 radians

We must convert 0.129 radians to degrees in order to determine whether or not the ramp was constructed in accordance with City law

πradians = 180◦ 0.129 radians = 0.129(180◦/π ) ≈ 7.4◦ The ramp was not constructed in accordance with the law since 7.4◦ is more than the allowed 5◦

(a) cos(arcsin(0.2)) (b) tancos−1−a

b



(c) sin(cos−1(−a))

SOLUTION (a) cos(arcsin(0.2)) is the cosine of the angle θ ∈−π

2 ,π2 whose sine is 0.2

Draw θ in a right triangle, as shown in Figure 20.27 We know θ ∈0,π

2 because 0.2 > 0 cos θ =x

1; solve for x

x2+ (0.2)2= 12

x =
1 − (0.2)2=√0.96 cos θ =

√ 0.96

x

1

.2 θ

Figure 20.27

(b) tancos−1−a

b  is the tangent of the angle θ ∈ [0, π] whose cosine is −a

b

We know θ ∈π

2, π because cos θ is negative Therefore tan θ is negative as well See Figure 20.28

tan θ = x

√

b2− a2

−√b2− a2 a

13 Don’t even dream of getting rid of tan by dividing by tan This would be mathematical blasphemy! tan x is NOT (tan) times x.

x y

a

b

√b2 –a2

θ

x =

Figure 20.28

(c) sin(cos−1(−a)) is the sine of the angle θ ∈ [0, π] whose cosine is −a

We know θ ∈π

2, π because cos θ is negative Therefore sin θ is positive

sin2θ + cos2θ = 1 sin2θ + a2= 1 sin θ =
1 − a2

θ

(–a, sin θ)

sin θ = √1 –a 2

(sin 2 θ) + a 2 = 1 1

Figure 20.29

P R O B L E M S F O R S E C T I O N 2 0 3

1 Evaluate each of the following expressions exactly Do not give numerical approxima-tions

(g) tan−1(√

+tan−1(−1)2

2 Use the calibrated unit circle below to approximate the following In each case, explain

in words how you used the calibrated unit circle to make your estimate

(a) sin−1(0.8) (b) cos−1(0.6) (c) tan−1(2)

650 CHAPTER 20 Trigonometry—Circles and Triangles

3

2

4

.1 2 3 4 5 6 7 8 9

5

6

1

1

0.5 0.4 0.3 0.2 0.1

v

u

3 The function f (x) = tan x has an inverse function when its domain is restricted to (−π/2, π/2)

(a) Graph y = tan−1(x) Where is the derivative positive? Negative?

(b) Is tan−1(x)an even function, an odd function, or neither?

(c) Is the derivative of tan−1(x)even, odd, or neither?

4 (a) Let h(x) = sin(sin−1(x)) What is the domain of h? Is h(x) = x for every x in its domain? If not, for what x is sin(sin−1(x)) = x?

(b) Let j (x) = sin−1(sin(x)) What is the domain of j ? For which values of x is

j (x) = x? For which values of x is j (x) = x? (Caution: There are infinitely many

values of x for which j (x) = x Be sure to identify them all.)

5 On the same set of axes sketch the graphs of f (x) and f−1(x)

(a) f (x) = sin x, where x ∈ [−π/2, π/2]

(b) f (x) = cos x, where x ∈ [0, π]

6 Find the angle between π/2 and π whose sine is (a) 0.5

(b) 0.2 (Give an exact answer and then a numerical approximation.)

7 Simplify the following

(a) sinarctan34 (b) tan(cos−1(0.5)) (c) cos(sin−1x), x <0 (d) tansin−1w

, w, r > 0