Calculus - Chapter 1 Solutions
1.1.1
1.3.1
1.
2.
3.
4.
1.2.1
1.3.2
1.2.2
1.3.3
1.2.3
1.4.1
1.2.4
1.4.2
1.2.5
1.4.3
1.2.6
1.4.4
1.5.1
a.
Distance = speed time; The graph can be broken into sections in which the average speeds are
approximated and multiplied by the length of time for each section. Smaller sections should give better
accuracy and be closer to the exact answer, which is the area under the curve. Answer 230 miles
b.
The trucks speed will be the absolute value of the slope of its distance function. When the graph is flat,
the truck is stopped. When the slope is negative, the truck is driving towards home, and when it is positive,
the truck is driving away from home.
c.
The 27 and 53 represent areas under the speed curve, and the 50 represents the slope of the distance
function.
a.
V r 2h
b.
1
3
Bh
c.
4
3
r 3 43
a.
It is a cylinder.
b.
V r 2h 62 8 288 un3
a.
b.
This is the difference between the areas of the two triangles:
bh
2
1
3
55
2
82 6 42 6 96 cm3
2
10 10 15 13 1500 500 in.3
15.1875 m 3
4.52 243
16
25
2
A( f , 0 x 7)
c.
12.5 un2
25
2
22
21
2
10.5 un2
The area of the second triangle must be the area of the first to make their difference, which is
A( f , 0 x k) , equal 0. At k = 10 the two triangles are congruent and have equal area.
y
See graph at right. This is a semicircle with a radius of 4.
a.
domain: 4, 4
range: 0, 4
This is a quarter of a circle: A(g, 0 x 4) 14
c.
This is double the answer from (b): A(g, 0 x 8) 2(4 ) 8 un2
d.
(c) is twice as much as (b).
6.
a.
See graph at far right above.
b.
Time
Distance
c.
r 2 14 4 2 4 un2
b.
0.5
25
1
50
1.5
75
2
100
2.5
120
3
140
mph
5.
See graph at far right below.
hours
Chapter 1 Solutions
�a.
See graph at right above.
y
b.
c.
d.
e.
2
3
2
3
(x 1)2
(3, 140)
5
miles
7.
y (x 1) 5
(2, 100)
Both have a slope of 12 , but one is shifted to the
left 2 and up 3.
Substitution of x = 1 gives y = 6.
y
hours
See graph at right below.
Line through (2, 1) with m = 5.
8.
y 3(x 5) 2
9.
a.
point-slope:
b.
slope-intercept:
c.
y y
38
point-slope: m x2 x1 12
5
5 , y 5(x 1) 3 or y 5(x 2) 8
1
2 1
10.
11.
y 3x 6
a.
f (x) is the same as f (x) because f is symmetric about the y-axis.
b.
f (x) is the opposite of f (x) : f has point symmetry at the origin.
y
See graph at right.
a.
b.
12.
y 25 x 6 2
The graph jumps at this point or is discontinuous.
f (0) 12 (0) 1 1 , f (4) 4 6 2 , f (6) 6 6 0
a.
Continuous. Intuitively, the graph can be drawn without lifting a pencil.
b.
The point (3, 1) is still defined.
13.
The first example gives a large interval with a hole in it. The second example states the same domain as two
separate intervals.
14.
For f (x) , the domain is limited to x 25 because of the square root. For g(x) , the domain is limited to
x 25 because of the denominator. For h(x), the domain is limited to x 25 since we can only take logs of
positive quantities.
15.
A. 2
B. 3
C. 1
a.
D: {x: all reals}, R: {y: y 0 }
c.
x = 2 and x = 0. horz shift affects domain, vert shift does not.
b.
x=0
16.
a.
(x 2) for x 2
h(x)
x 2 for x 2
17.
a.
b.
See graph at right.
The first part must meet the second at x = 1.
x 2 2, x 1
Two possible answers: f (x)
x, x 1
b.
h(x) x 5
y
x 2 1, x 1
and f (x)
x 4, x 1
Calculus Solutions
�a(3 1)2 b 3 2 1,
a 4 2 1,
4a 3
1 3 a(1 1)2 b b, so b 2
18.
a
19.
20.
3
4
a.
Possible answer: (3, 0), assuming f is an absolute value function.
b.
No; Finite differences are not consistent with a quadratic function.
c.
Yes; f (x) x 3
d.
Yes; Intermediate values are not given.
e.
No; It is given that f(x) is a continuous function.
a.
See graph at right. No. The y-values do not agree at x = 3 and x = 5.
b.
A(g, 0 x 8) 2 3 3 2 7 3 6 6 21 33 un2
c.
Pieces of the graph resemble steps.
21. a.
b.
f (0) 4 3(0) 4
f (1) 1 1
f (3) 3 3 0
f (1) 4 3(1) 1
f (3)
32
c.
f (3) (3) 3
d.
f (0) 0 0
f (9.4) 3 9.4 6.4
f (0.5)
5
0.5
10
x
f (4) 6 2(4) 2
22.
a.
b.
23.
a,
b.
24.
78, 95, 95
for 0 x 1
for 1 x 2
for 2 x 3
0.44
0.61
y 0.78
0.95
1.12
for 3 x 4
for 4 x 5
It is a sphere with radius 3.
4
3
r3
4
3
6 3
2
y
4
3
See graph at right.
a. D : (, ), R : (0, )
25.
26.
27 36
un2
03
2
b.
Yes, 22 3(2) 2 .
c.
Yes.
34
43
30
1.5 3.5 3.5 1.5 10 un2
2
2
2
a.
b.
This is less than the true area.
a.
3
2
(30-60-90 triangle)
b.
3
(30-60-90 triangle)
3
c.
2 (45-45-90 triangle)
d.
Undefined (division by 0)
Chapter 1 Solutions
�27.
a.
28.
See graph at right.
As x approaches zero, the function shoots off to negative infinity from the left and
positive infinity from the right, because at x = 0 we are dividing by zero. x = 0 is
the asymptote.
b.
Division by zero can cause an asymptote. y = 0
c.
a.
1 3
x1
x2 x
4
x 3
b.
x 3 x 3 2x 2 3x 4
x 3 2x 2 x 1
(x 4 2x 3 )
2x 3 5x 2
(2x 3 4x 2 )
x 2 3x
(x 2 2x)
x3
(x 2)
1
30.
y x 2.
a.
The graphs look like
b.
If you ignore holes and vertical asymptotes, the graphs would look identical.
c.
They all simplify to x 2 but with different remainders.
x2
x 1 x 2 3x 2
x 1 x 2 3x 3
(x 2 1x)
2x 2
(2x 2)
0
(x 2 1x)
2x 3
(2x 2)
1
x2
1
x1
x2
5
x 2 1
x 2 1 x 3 2x 2 x 3
(x 3
x)
3
(2x 2
2)
5
2x 2
a.
y x 2
b.
They are the same except for the fraction.
c.
As x gets larger (both in the positive and negative directions), the graph approaches the slanted line.
y
31.
See graph at right. y 3
32.
We only need to look at large positive and negative values of x.
a.
33.
1
x2
x 2 x 4 0x 3 5x 2 3x 3
(x 3 3x 2 )
x 2 3x
(x 2 3x)
29.
a.
1
2
x
2x 1
4
3x1
b.
y7
b.
y 2x 1
3x 1 6x 2 x 3
(6x 2 2x)
3x 3
(3x 1)
4
c.
4
The end behavior function is the non-fractional terms of f(x).
Calculus Solutions
�34.
5x 10
i.
5x 2
x2
17
x2
Therefore the end behavior is y 5x 10 .
0x 3
(5x 2 10x)
10x 3
(10x 20)
17
ii.
Since the degree of the numerator and denominator are the same, we only need to look at the first terms to
determine the end behavior. y 2x
23
3x
iii.
y
y
x 2 4 x 4
x2
(x2)(x2)
(x2)
iv.
2x 3 2x
x
2x 2 2
y x2
a.
(i) and (iii) have slant asymptotes. (ii) has a horizontal asymptote. (iv) has neither.
b.
Answers vary, but the polynomials in the numerator and denominator must have the same degree. Answers
n
should be of the form: y 5x n L .
4 x L
Answers will vary. See graphs below for possible solutions. Part (c) is not possible because a function can have
at most two horizontal asymptotes.
a.
5
b.
y
x
5
a.
A y, 3 x 3
x
5
e.
5
x
5
y
x
5
3 1 2 1 1 1
2
2
5
2
5
2
5
25 02 1 25 12 1 25 22 1 13.6 un2
b.
The estimate is too high because if we look at the rectangles opposite each other
(e.g. from 3 to 2 vs. from 2 to 3), the overestimating rectangle overcompensates for the underestimating
rectangle.
c.
A y, 3 x 3
2 1 1 1 0 1
2
2
5
37.
5
36.
d.
2
5
2
5
25 12 1 25 22 1 25 32 1 13.6 un2
d.
It was true in this instance because of its symmetry about the middle (about x = 0), but would not be true in
general. E.g., it does not work for A(y, 0 x 3) for the given y.
a.
See graph at right.
b.
Distance traveled.
c.
The units for the base are miles.
The units for the height are miles
. Therefore
hour
mph
35.
miles
miles ghr
.
hr
hours
d.
It is a trapezoid with bases of 30 and 70, and a height of 2. A 12 (30 70)(2) 100 miles
Chapter 1 Solutions
�38.
We cannot divide by zero. Therefore x 2 0 x 0 and D : {x : x 0} .
a.
Since
39.
x 2 is always positive,
b.
f (x)
a.
y 1
3
( x)2
3
x2
3
x2
3
x2
1, f ( x)
1 1 . Therefore R : {y : y 1} .
3
( x )2
3
x
b.
1 if x 0 , f (x h)
x
2
3
(xh)2
40.
a.
x 2 1 0, x 2 1, so D (, )
b.
x 0 and x 1 0, x 0, x 1 : D x : x 0 and x 1
c.
x 2 9 0, x 2 9, x 3 or x 3 : D (, 3] U[3, )
d.
x 3 0, x 3, and x 4 0, x 4, so D (3, )
41.
a.
k 7 (k 7 )1/2 k 7/2
b.
c.
( n)4 (n1/2 )4 n2
d.
42.
a.
A cone
43.
a-c.
d.
See graph at right.
a: even, b: neither, c: odd
3 4
t
5
(t 4 )1/3 t 4/3
b 31 (b 31 )1/5 b 31/5
b.
V 13 bh 13 52 4 1003 un 3
a
x
44.
a.
See graphs at right.
b.
f has a V.A. at x = 4 and g has a hole at (4, 3).
c.
f:
g: D : {x : x 4} , R : {y : y 3}
45.
46.
For any x * where q(x*) 0 , there will be an asymptote if p(x*) 0 . If p(x*) 0
, then for the types of functions shown in the problem, there will be a hole. However the
complete answer is that there will be a hole if there are at least as many factors of
(x x*) in p(x) as there are in q(x) , and an asymptote otherwise.
a.
b.
c.
They are not completely equal because the differ at x 3 . Their graphs are identical except at x 3 .
25x6
Two possible answers: If x 2 then x x2 x 3 .
1,
x2
otherwise
Or: If f (x) 25x6
x
D : {x : x 4} , R : {y : all reals}
(x2)(x2)
x2
x2
then f (x) x 3 .
x 2 if x 2
Calculus Solutions
�a. y 2
47.
y 2
c.
V.A.: x = 0, H.A.: y = 0
y
5
See possible graph at right. Answers vary but must have holes at x 4 , V.A. at
x 2 and H.A. y 3 in both directions.
5
48.
b.
d.
e.
x
5
5
49. a.
Not defined: Hole
b.
Not defined: Hole
c.
Not defined: Asymptote
y
2
1
1
2
d.
50.
Not defined: Asymptote
e.
0
Defined: 1cos
01
0
1
0.
f.
Not defined: Hole
b.
It is a hole because f (x) 1 except at x 2 .
It is a hole because g(x) x 2 except at x 2 .
c,
1
It is an asymptote because h(x) x2
and approaches infinity around x 2 : as
a.
x 2 , h(x) and as x 2 , h(x) .
d.
See graph at right. E.g., y
(x2)(x4)
x4
x 2 6x8
x4
Answers may differ but must be of the form
y
51.
52.
(x2)r(x)
where
r(x)
r(x) 0 only at x = 4.
a.
As x , y .
b.
As x , y .
c.
As x 1 , y 3 .
d.
As x 1 , y 3 .
y
x
Answers can vary: one possible solution: y x3
53.
D x : x 2, R y : y 1. For example, y
Chapter 1 Solutions
1
x2
�54.
See graph at right.
a.
The triangle is 60-30-90, and the sector is 16 of the circle:
A
b.
33 3
2
6 9 2 3 11.06 un2
This is a quarter circle minus (a):
A
c.
r2
r2
4
6 9 2 3 9 6 9 2 3 3 9 2 3 17.22 un2
This is (a) plus twice (b):
6 9 2 3 2 3 9 2 3 12 9 2 3 45.49 un2
55.
56.
57.
58.
26.2
7
a.
7t 26.2, t
b.
7 miles per hour; This is her total distance divided by the total time from part (a).
c.
14 miles
d.
a.
( 100)3 10 3 1000
b.
27 4/3 ( 3 27 )4 34 81
c.
16 3/4 ( 4 16 )3 2 3 8
d.
9 2 ( 9 )4 34 81
miles
hour
3.74 hours
2 hours 14 miles
See graph at right.
a.
b.
c.
y 1
a.
A( f (x), 3 x 3 f (3) f (2) f (1) f (0) f (1) f (2)
2(3)2 1 2(2)2 1 2(1)2 1 2(0)2 1 2(1)2 1 2(2)2 1 44 un2
b.
A( f (x), 3 x 3) f (2) f (1) f (0) f (1) f (2) f (3)
2(2)2 1 2(1)2 1 2(0)2 1 2(1)2 1 2(2)2 1 2(3)2 1 44 un2
c.
f (3) f (2)
f (2) f (1)
L
2
2
12
42 42 12
28
44 un 2
2
2
2
A( f (x), 3 x 3)
28
2
f (2) f (3)
2
The answers were all the same because of the parabolas symmetry, but this does not usually happen.
59.
a g(x);
b h(x);
c f(x)
Calculus Solutions
�60.
a.
A sphere.
b.
d3
6
4
3
r 3 43
d2 2432
3
c.
No
243
2
d 3 729
d 3 729 9
61.
a. D :{x : 2 x 4} , R : 3 y 1
b.
D : 6 x 6, R : {y : 3 y 3}
c. f (g(2)) f (2) 1
d.
g( f (2)) g(3) 2.9
e. f ( f (3)) f (0) 1
f.
f (g(5)) f (3) , which is not defined.
62.
a. h( f (x)) or f (h(x))
63.
a.
f : D (, ), R (0, )
g :1 x 0,1 x, D (,1], R [0, )
b.
f (g(x)) f ( 1 x ) 2
c.
g( f (x)) g(2 x ) 1 2 x . So 1 2 x ,1 2 x , x 0 : D (, 0] .
a.
h( j(x)) x
b.
When x is substituted into the first function and then the value f(x) is substituted into the second function,
the result is x. i.e. What the first function does, the second function undoes.
To get the inverse, switch the x and the y.
64.
c.
b.
g(h(x))
c.
f ( f (x))
1 x . The domain is the same as for
d.
h(g( f (x)))
g : D (,1] .
x ey 2
x 2 ey
g(x) ln(x 2)
ln(x 2) y
65.
a.
66.
a.
sin1
12 6
b.
y 2x
b.
log y x log 2
log y
log 2
log 2 y x
c.
g1(7) 5
x1
x
xy x 1
xy x 1
x(y 1) 1
x
1
y1
1
See steps from parts (a) and (b). f 1 (x) log2 x , g 1 (x) x1
The inverse function can be found by solving for x first and then switching the x and y.
67.
a.
The inverse of f (x) is not a function because f (1) f (1) 8 . Therefore, the inverse would not be a
function.
Chapter 1 Solutions
�b.
i.
g1(2) 1
ii.
f (g1(2)) f (1) 8
iii.
g1(g(2)) g1(3) 2
(Note: The inverse and the original function should cancel each other out.)
68.
c.
j(4) h1(4) 3
a.
4(2)
5(5)
6
10
3
5
y
y
y
69.
70.
71.
(x 5) 4
b.
y (x 1)2 3
x 3 4
x 1
a.
The function values are 3, 5, 7, 9. They change linearly (add 2 each time).
b.
The function values are 10, 7, 4, and 1. They change linearly (subtract 3 each time).
a.
f (1) f (1) 2, f (2) f (2) 4, f (3) f (3) 6
b.
The graph must be even and go through the given values a possible function is y 2x .
c.
This graph (compared to the previous one) should illustrate that intermediate values are not known.
d.
No, the values of f(x) do not increase as a parabolic function increases.
a.
x 2 0, x 2 : D : 2,
b.
72.
3
5
3
5
3
5
x 4 : D : x : x 4
c.
x 4 0, x 4 : D : 4,
d.
x 0 and
a.
Rectangles:
Right: A 3
2 x
x
0 : 2 x 0 , 2 x : D : 0, 2
Left: A 3 x 1, 0 x 6 3 0 1 3 1 1 K 3 5 1 32.495 un2
x 1, 0 x 3 1 1 3 2 1 K 3 6 1 37.43 un2
Trapezoids:
A 3 x 1, 0 x 6
73.
74.
3 013 11
2
3 113 21
2
3 513 61
2
b.
Trapezoids and left endpoint rectangles are under estimates. Right endpoint rectangles are overestimates.
c.
Trapezoids are more accurate.
a.
D (, ), R [2, 4]
b.
D (, 2) U(2, ) , R (, 0) U(0, )
a.
See graph at right.
b.
At time = 0, because that is when the slope is greatest.
c.
We can tell by using the table or looking at the slope:
51 42
it changes by 10 min
0 min
temp.
50
109min
0.9
.
minute
time
0
10
34.964 un2
40
80
Calculus Solutions
�75.
a.
b.
Helen is not completely correct (her formula does not work for negative values).
x2 x
g(x)
76.
a f (x) , b h(x) , c
77.
y sin x is symmetric about the origin.
y cos x is symmetric across the y-axis.
78.
a.
(x)2 x 2 , even, reflection over y-axis
b.
2(x)3 2x 3 , odd, rotation about the origin
c.
2 (x)4 2 x 4 , even, reflection over y-axis
d.
2 (x)5 2 x 5 , neither
e.
sin(2x) sin(2x) , odd, rotation about the origin
f.
arctan(x) arctan(x) , odd, rotation about the origin
79.
80.
Since f is even, f (x) f (x) . Since g is odd, g(x) g(x) .
a.
f (x) g(x) f (x) g(x) , so it is neither even or odd.
b.
f (x) g(x) f (x)(g(x)) f (x)g(x) : it is odd.
c.
f (g(x)) f (g(s)) f (g(x)) : it is even.
d.
g( f (x)) g( f (x)) : it is even.
e.
f (x) f (x) : it is even.
f.
g(x) g(x) g(x) : it is even.
a.
x
3
2
1
0
1
2
3
f(x)
1
2
1
0
1
2
1
g(x)
1
2
1
0
1
2
1
h(x)
1
2
1
0
1
2
1
b.
h(x) is even and also h(x) f (x) .
c.
i.
g1(2) 2
iii. f (g(1)) f (3) 1
ii.
81.
The statement does not say anything about vertical asymptotes: i only
82.
a.
(x)1/3 3 x 3 x : odd
b.
(x)2 4 x 2 4 : even
c.
(x)3 (x)2 1 x 2 x 2 1 : neither
Chapter 1 Solutions
impossible; Not given in table.
11
�83.
f (2) (2)2 5(2)
a.
b.
g(2) (2) 3 1
4 10 6
c.
f (g(2)) f (1) (1)2 5(1) 6
d.
g( f (2)) g(6) (6) 3 3
e.
f ( f (2)) f (6) (6)2 5(6)
f.
g(g(2)) g(1) 1 3 4
36 30 6
84.
12 (4)(2) 12 (3)(1.5) 1.75 un2
12 (4)(2) 12 (x 4)(0.5x 2) 10
4 12 (x 4)(0.5x 2) 10
12 (x 4)(0.5x 2) 14
A
a.
b.
85. See graph;
( )
0.5x 2 4x 8 28
x
86.
4 16 4(0.5)(20)
2(0.5)
4 56 4 2 14
See graph at right.
This is a truncated cone next to a cylinder.
Vtruncated 13 (4 2 )(4) 13 (22 )(2) 13 (64 8)
cone
56
3
Vcylinder (22 )(3) 12
Vtotal
56
3
36
92
3
x , y , and as x , y 1 .
87.
As
88.
A(y, 0 x 4)
89.
a.
f (g(x)) f (x 3) (x 3)2 5 x 2 6x 9 5 x 2 6x 14
b.
g( f (x)) g(x 2 5) (x 2 5) 3 x 2 8
c.
1
2
0.5 1 L
010 0.51
11
3.5
3.51
2.171 un2
d. 6 x 3
6 x 2 5
9 x
11 x 2
No solution
90.
a.
x 2 4
(x2)(x2)
(x2)
3
2
x(x5)(x2)
x(x5)
x 3x 10x
hole: x = 2
V.A.: x = 0, 5
H.A.: x 0 (, 5) U(5, 0) U(0, 2) U(2, )
b.
9 x 2
(3 x)(3 x) 3 x
1
2(x3)
2
2
2x6
hole: x = 3; (, 3) U(3, )
12
3
2
Calculus Solutions
�c.
x 2 9x18
x 2 9x18
2
(x6)(x3)
x 3x18
V.A.: x = 6, 3
H.A: y = 1
x : x 6, 3
d.
x 2 6x9 (x3)(x3)
x3
1
5(3 x)
5
5
155x
x 53
hole: x = 3
x : x 3
91.
94.
95.
a.
See possible graph at right.
b.
The graph is shifted right 2 and up 1.
c.
Switch the original domain and range.
a.
h(x) (x 2) 3 4 5 (x 1)2 1 x 2 2x 1 1 x 2 2x
b.
k(x)
c.
For g, D:
e.
D: all real numbers, R: y > 3, For the inverse, just exchange the domain and range.
f.
The inverses of functions (a) and (c) are not functions, since they have y-values for which there are multiple
x-values.
D : 0 x , R : 2 y 5
x
D : 2 x , R : 1 y 6
D : 2 x 5, R : y 0
2
1
(3 x)4
22
1
3 x4
11 x
x : x 4 , R: y : y 2 (because x1 4 can be anything but 0)
For k, D: x : x 1, R: y : y 0 ( 11 x cannot be 0)
96. y increases by 2 each time x increases by 1.
97.
a.
x
f(x)
3
28
2
15
13
1
6
9
0
1
1
0
2
3
0
6
1
3
3
10
3
y increases by 4 each time x increases by 1.
b.
x
f(x)
3
21
2
6
15
1
3
9
2
6
9
3
21
15
y decreases by 6 each time x increases by 1.
Chapter 1 Solutions
13
�98.
For a parabola, y increases by a constant amount, namely by 2a, for each unit increase in x. So parabolas
change in a linear way ( y is linear).
99.
f (x) a : no change, y 0 always
f (x) ax b : constant change, y a always
f (x) ax 3 bx 2 cx d : change varies, y is quadratic
100.
x n changes in the pattern of x n1 , i.e. a polynomial of degree n 1.
101.
x, x 0
The graph changes from a line with slope 1 to a line with slope 1.
y
x, x 0
102. a.
b.
x 2 4 0 , D: ,
x 2 x 0, x x 1 0, x 0, 1, and x 2 0, x 2.
So D:
103. Substitute
x : x 2 and x 0, 1
y 3 x:
y 2 6(y 3)
y 2 6y 18
y 2 6y 18 0
(y 3)2 9 18 0
(y 3)2 9 0
There are no solutions: e is correct.
104. a.
7
: (30-60-90 triangle)
6
b.
x0
c.
105. a.
b.
c.
3
: (45-45-90 triangle)
4
f (2) 2(2)2 3 8 3 5
2, switch the x and y from part (a).
2(x 2)2 3 2(x 2)2 3 64
2x 2 8x 8 3 2x 2 8x 8 3 64
2x 2 8x 5 2x 2 8x 5 64
16x 64
106. a.
14
Reflect f over the x-axis.
x4
b.
Shift f 3 units left.
4
2
4 2
4
2
4 2
Calculus Solutions
�c.
Shift f 2 units down.
D.
Reflect negative values over x-axis.
y
4
2
4 2
4
2
4 2
107. For f (x) 13 x 1 and f 1(x) 3(x 1) , the areas are: 2 ( 13 (3) 1 13 (5) 1) 2 14
and,
28
3
3
since f 1 (2) 3 and
108.
f 1 ( 83 ) 5 , 2 (2 83 ) 2 14
28 .
3
f (2.5) 0.449 and f (3.5) 0.814 : A( f ,1 x 4) 0.821 0.449 0.814 2.084 un2
109. a.
The midpoint rectangles give the best approximation because they leave out small pieces of area under the
curve but include other small pieces above the cure, which gives a better overall estimate than left
rectangles which miss larger areas, or right rectangles which include larger areas which they should no
include.
b.
No, the graph could be decreasing.
110. a.
Start off increasing slowly, then increase quickly to a maximum. Now
decrease quickly to a minimum. Then increase slowly to a slightly lower
maximum, then decrease to the same elevation you started at.
b.
Increasing, decreasing, level, less steep, more steep, etc.
111. See sample graph at right. Answers vary, but examine the slope.
112.
f (x)
D:
x
y
1
x
f (x)
x : x 0, R: y : y 0
3
2
1
3
1
6
1
1
1
2
0
1
und 1
1 und und
2
1
2
1
2
1
3
1
6
D:
x
y
1
x2
x : x 0, R: y : y 0
1
9
1
4
5
36
1
1
3
4
0
1
und 1
und und
1
4
3
4
1
9
5
36
The slope goes from slightly negative, to very
negative. Then from very negative to slightly
negative.
The slope goes from slightly positive, to very
positive. Then from very negative to slightly
negative.
f (x) sin x
D: , , R: 1,1
x
3 0
f (x) cos x
D: , , R: 1,1
x
3 0
0
1
3
2
1
0
1
0
1
1 1
1
1
1
The slope cycles between 1 and 1.
Chapter 1 Solutions
1
1
0
1
1
1
0
1
3
2
-1
1
0
1
The slope cycles between 1 and 1.
15
�f (x) (0.5)x
D: , , R: 0,
x
y
3
8
2
4
4
1
2
2
f (x) 2 x
D: , , R: 0,
0
1
1
1
2
1
2
1
4
1
8
1
8
1
4
x
y
1
8
1
4
1
2
1
8
1
4
0
1
1
2
1
2
2
4
3
8
4
The slope starts out very negative and becomes
closer and closer to zero.
The slope starts out almost 0, then continues
to increase,
f (x) log x
D: 0, , R: ,
f (x) log2 x
D: 0, , R: ,
x
y
1
0
2
0.3
0.3
3
4
5
0.48 0.6 0.7
0.18 0.12 0.1
x
y
1
0
2
1
1
3
4
5
1.58 2
2.32
0.58 0.42 0.32
The slope is always positive and always
decreasing.
The slope is always positive and always
decreasing.
f (x) x
D: 0, , R: 0,
f (x) 3 x
D: , , R: ,
x
y
x
y
0
0
1
1
1
2
3
4
5
1.41 1.72 2
2.23
0.41 0.31 0.28 0.23
The slope is always positive and always
decreasing.
113. First part: y a(x 2)2 8
and goes through (0, 6):
1 0
0.18
0.26 1
Second part: y a x 5 3.5 (cubed
root also would work) and goes through (9, 6):
y a x 5 3.5
6 a(0 2)2 8
6 a 9 5 3.5
2.5 a 4
4a 2
a
1
2
1
2
(x 2)2
2
3
1.26 1.44
0.26 0.18
The slope is always positive, starts off flat and
increases until x = 0, where it begins to
decrease.
y a(x 2)2 8
6 4a 8
1.44 1.26 1 0 1
2.5
2
5
4
5
4
x 5 3.5
12 (x 2)2 8, 0 x 5
So y
5
4 x 5 3.5, x 5
114.
16
a.
25 x 2 0, 25 x 2 , D: 5, 5
b.
x 5 0, x 5, D: 5,
c.
x 2 x 12 0, x 4 x 3 0, D: x : x 4 and x 3
d.
x 2 0, x 2, and x 2 4 0, x 2 4, x 2, 2, D : x : x 2 and x 2
Calculus Solutions
�115.
116. a.
x 1 x 2
x
x x 2
1 x 3
x2
x3
x2
1
x2
tan x csc x 2
sin x
1
cos x sin x
1
cos x
b.
2
x2
sin x cos x
2 sin x cos x
sin 2x
cos x
1
2
2x
, 53
x2
2
x4
4
1
4
1
2
1
2
, 56
, 13 , 5 , 17
x 12
12 12 12
2 sin 2 x cos x 1 0
c.
1 x 3 x 3 1
x2
tan x cot x 2
d.
sin x
x
cos
cos x
sin x
sin 2 x cos2 x
2 1 cos2 x cos x 1 0
2 cos x sin x
1 sin 2x
1 sin 2x
2 cos2 x cos x 1 0
2 cos x 1cos x 1 0
cos x 12 , 1
x
2x
, 5 ,
3 3
3
2
3
4
, 74
117. Possible functions:
a.
x3
(x3)(x1)
118. a.
D: 2 , 2 , R: [1, 1]
b.
D: [1, 1], R: 2 , 2
c.
b.
x4
x(x4)(x5)
c.
1
x
3x 1
cos x: D: [0, ] , R: [1, 1]; cos 1 x : D: [1, 1], R: [0, ]
119. If g(x) is even then g(a) g(a) . Thus, g(x) fails the horizontal line test and g 1 (x) is not a function
unless we restrict the domain of g.
120. a.
This is a hemisphere with radius 5.
b.
V 12 43 r 3 23 5 3
250
3
un 3
121. The midpoint approximation is better in this case.
Midpoint: A( f , 2 x 8) 2 f (3) 2 f (5) 2 f (7)
2(0.25)3(6) 2(0.25)5(4) 2(0.25)7(1) 9 10 7 26 un2
Trapezoid: A( f , 2 x 8) ( f (2) f (4)) ( f (4) f (4)) ( f (6) f (8))
0.25(2)(7) 0.25(4)(5) L 0.25(8)(1) 24.5 un2
124. a.
b.
All walks have the same speed, but the first two would be walking away from the motion detector and the
last would be walking towards the motion detector. All walks begin 5 feet from the motion detector.
They both start away from the motion detector, walk to the detector, then away from the detector. The
slopes are different, so the speed of walking for
c.
x 3 is greater than that of x 2 .
Ara has the greatest speed at the beginning. Adelyn has the greatest speed at the end.
Chapter 1 Solutions
17
�125. See graph at right. Note: Graph is scaled by 2s.
a.
b.
126. a.
b.
Because the curve is composed of two linear pieces, the exact area can be
computed using two trapezoids.
A( f (x), 1 x 5)
D = (1, 2], R = (2, 2]
17
2
53 4
2
8 16 24
un2
1.5x 0.5, 1 x 1
y
1 x 2
3x 4,
32
23
(2 1 x) , x 1
y 1
x0
x ,
D = (, 1) U(0, ) , R = (0, )
Answers will vary in defining the function.
127.
A( f , 2 x 3)
1
2
f (2)
1
2
f (1.5) L
1
2
f (2.5)
12 (2)2 (2) 6) 12 ((1.5)2 (1.5) 6) ... 12 ((2.5)2 2.5 6)
12 (0) 12 (2.25) 12 (4) 12 (5.25) L 12 (4) 12 (2.25) 20.625 20 58 un 2
128. The original function is quadratic. The differences of the differences are constant.
129. a. x 2 x 0, x(x 1) 0, x 0,1 : D x : x 0 and x 1
b.
c.
1
x 2 x
12 , x 2 x 2, x 2 x 2 0, (x 2)(x 1) 0, x 1, 2
Part (b) demonstrates that g 1 (0.5) has two solutions.
f (3) 32 9
b.
f (3) (3)2 9
c.
g(9) 9 3
d.
g( f (3)) g(9) 3
e.
g( f (6)) g(62 ) 62 6
f.
g( f (x)) g(x 2 ) x 2 x
130. a.
131. a.
b.
The function values are 1, 5, 9, and 13. The change is constant (it is 4 each time).
The areas are 0, 3, 10, and 21. Their change is quadratic, though students may only see that they are
nonlinear, growing by consecutive multiples of 2.
132. a.
Increases when x < 3 and x > 2, decreases when 3 < x < 2.
b.
Increases when 1 < x < 1, decreases when x < 1 and x > 1.
c.
No, the graph curves in the interval.
133. The speed of walk 1 is the reciprocal of walk 2.
134. a.
i: 9 < t < 12; When the slope is negative.
ii. 3 < t < 6 and t > 12; When the slope is zero.
iii. Answers vary, t = 10 is a good answer. When the slope is steepest (pos. or neg.).
iv. Answers vary, t = 7.5 is a good answer. When the slope is decreasing.
b.
18
Diamonique increases her speed, moving away from the detector at a constant rate for 3 seconds. She then
stays at a constant velocity for the next 3 seconds. She again increases her speed for 2 seconds, then stays
Calculus Solutions
�at a constant velocity for 2 seconds. She then decreases her velocity at a fairly constant rate for 2 seconds.
At the end she is moving a constant rate. She is walking away from the detector the entire time.
135. a.
Fredos graph represents the position of the athlete during the race and should have time on the x-axis and
distance on the y-axis. Friedas graph represents the velocity of the athlete and should have time on the
x-axis and velocity on the y-axis.
b.
Both graphs show the race lasting 18 units of time. The slope of Fredos line gives you the rate of the
athlete. Since 90 18 5 , the rate of the athlete in Fredos graph matches the rate graphed in Friedas
graph. The area under Friedas line is 90, which confirms the length of the race shown in Fredos graph.
136. a.
12 mph, 36 mph, and 6 mph (approximately)
b.
Her velocity is the slope of her distance function.
c.
About 8 miles.
138. a.
A( f , 3 x 3) 2 12 12 2 5
A( f , 3 x 3) 0 because of symmetry.
b.
139. At x = 2:
4 1 a(3)2
1 9a
1
9
b.
c.
y
3
3 x
3 x
b.
x 2 0, x 2 : D x : x 2
x 4 0, x 4 : D [4, )
c.
g(x) must be defined and 2 , so x 4 and
d.
g( f (x))
1
x2
4 : x 2 and
3 x
3
141. a.
1
1
x 2 1 a(x 1)2
140. a.
x 4 2 so simply D [4, ) .
1 40
x2
1 4 x8
x2
x2
7 4 x 0
x2
The numerator and denominator must either both be positive or both be negative. Check points on either
side of the zeros ( x 47 , 2 ).
At x = 3, k(3)
At x
Chapter 1 Solutions
15
,
8
74(3)
32
15
8
5 , which is not possible.
74 15
8
15 2
8
29/2
1/8
4 2
19
�74(1)
12
At x = 1, k(1)
3 , which is not possible.
Therefore D x : 2 x 47 .
142. a.
f (x)
x3
x 2 4 x21
x3
(x7)(x3)
1 , except at
x7
x 3 there is a hole.
x 7 is a vertical asymptote.
From end behavior, as x and as x , y 0, so y 0 is a horiz. asymptote.
b.
g(x)
x4 3
x 2 2x
x3 x
x(x2)
3x
, except at
x2
x 0 there is a hole.
x 2 is a vertical asymptote.
End behavior: as x and as x , y 0, so y 0 is a horizontal asymptote.
143. Examples: sleep per day, allowance per month, miles per gallon.
144.
f (x) is quadratic, for example, f (x) 2x 2 .
145.
A( f , 2 x 4) f (1.5) f (0.5) f (0.5) f (2.5) f (3.5)
146. a.
b.
14 (1.5)3 12 (1.5)2 (1.5) 3 L 14 (3.5)3 12 (3.5)2 3.5 3 14.875 un2
As x , y 0 . As x , y . As x 01, y . As x 0 , y .
As x , y 0 . As x , y . As x 0 , y 0.69 .
As x 0 , y 0.69 .
147. a.
i. About 15s
ii. About 5m
iii. About 3m
iv. Yes, at t 5 s and t 14.5 s.
b.
v. No, she turned around twice.
Part (ii) asks about total distance traveled while part (iii) asks about displacement.
148. a.
5 distance
b.
About 0.2m/sec
c.
Her average velocity is the slope of
the graph of her direct route.
time
5
10
15
150. Agnalia is correct. Motion implies continuity.
151. a.
b.
20
Answers vary, but you will notice that the bug changes directions and speeds.
i.
80
160
12 cm/sec
ii.
20
20
iii.
49
118
53 cm/sec
iv.
44
155
1 cm/sec
0 cm/sec
c.
Yes, explanations will varysome students will observe that this must happen at least three times.
d.
Yes, explanations will varysome students will observe that this must happen at least twice.
Calculus Solutions
�152. a.
b.
Its an ice cream cone: a hemisphere on top of a cone, except sideways.
(30-60-90 triangle) and h 10
V 12 43 r 3 13 r 2 h, r 10
3:
2
2
V 23 5 3 13 52 (5 3)
250
3
1253 3 488.524 un 3
153. Take care to account for the width of the rectangles and/or trapezoids.
3
2
154. a.
b.
3
3
c.
2 3
3
d.
155. See sample graph below. He must retrace his steps for 2 feet.
distance
8
4
4
156. a.
time
10
The area must be computed: it is about 12 40 12 55 1 60 14
average speed
b.
total distance
total time
30 115 miles .
miles 115 mph 51 1 mph
115
1
94
9
2
hours
157. Rearrange: 9y 4x 12, y 49x 12
has a slope of 49 . y 49 (x 6) 7
9
1
2
158. a.
159.
b.
h 2r or r
h
2
V 13 r 2 h 13
2
2
c.
d.
h2 h 12h3 un3
2
160. a.
Since f (1) 0 , the rectangle has a height of 0.
b.
A(y, 2 x 2) 7 0 1 2 4 un2
161. The points on the parabola are (1, 0), (2, 3), (3, 4), (4, 3), and (5, 0).
1
2
(0 3) (3 4) (4 3) (3 0) (1) 10 un2
This is an underestimate.
162. a.
5 m/min.
b.
Area is in units of the base times units of the height:
c.
Area under a velocity curve is total displacement.
d.
This is the area, or about
e.
f.
g.
h.
35
4
m m
min min
, meters.
20 200
010
20 10 5 35 m.
2
2
m/min
A rectangle.
Twice, there are two points of intersection.
See graph at right.
Examine the area under the curve.
Chapter 1 Solutions
21
�A(0 t 4) 20 10 0 5 35m
Dijin still needs to travel 65m after t = 4.
A(4 t x) 10x 65m x 6.5 min
Therefore the total time is 4 + 6.5 = 10.5 minutes to class.
163. a.
6000
b.
words
We can find the area under the functions:
6000 2
3000
60007000500(5)
3
2
12000 15750 27750 words
time
6
164. Rate can be multiplied by time to get total change, if the rate is constant. In general total change is found by
taking the area under the rate function.
Trip To Baja
3426
8
2627
8
2727
8
Speed (mph)
50.5 miles 20
10
Time (hrs)
t
2
t
2
5 3 26 2,
8
2
t 24, t
24
4
distance
For example: The important points are (0, 2),(3, 17),
and (6, 26). At t 3 his position must be 2 3 5 17 .
20
10
time
liters per hour
167. a.
b.
The number of liters that leaked out between 0 and 1 hours.
hours = liters .
The units are liters
hour
hours
168.
y 7(x 3) 2
169. The amount of change.
170. For the first part: y a(x 2)2 3
Substitute (2, 7): 7 a(2 2)2 3
10 16a
5
8
5
8
a, y (x 2)2 3
Second part: y a x 4
Substitute (2, 7): 7 a 2 4 2a,
a 27 , y
7
2
x4
58 (x 2)2 3, x 2
Answer: y
7
x2
2 x 4 ,
171. As x , y . As x , y . As x 12 , y 52 . As x 12 , y 52 .
172. It is a cylinder next to a cone:
22
V r 2h1 13 r 2 h2 (22 ) 2 13 (22 )(2)
32
3
Calculus Solutions
9:
45
9:
30
9:
15
9:
00
8:
45
166. See graph below right.
To calculate total time
30
8:
30
Rectangle width 14 hr.
A 3934
8
Using left rectangles yields 52 miles.
Approximately 22 + 51 = 73 miles
40
8:
15
b.
See graph at right.
The trapezoid method works best, using speed 27 at 10:00 .
8:
00
165. a.
�173.
h(x) f (g(x)) f (x 2)
( x2)2 2( x2)3
( x2)3
(x3)(x1)
x1
x 2 4 x42x43
x1
b.
x 2 2x3
x1
x 3 unless x 1
a.
b(x) x 3
D x : x 1
174. Total miles traveled in the Coronado, calculated by area under the graph of velocity:
20 12 40 70 12 60 1 30 1 10 40 35 60 30 175 miles
For D.O.: 60 1 40 12 70 1 50 12 30 1 60 20 70 25 30 205 miles
175 miles 22 mpg, vs. 205 miles 24 mpg for the D.O., so she should
Coronado gas mileage is 7.955
gallons
8.542gallons
choose the D.O. Sensation.
y
175. See graph at right.
It is a sine curve with amplitude = 2 and period = 23 .
Maximum at 6 , 2 , minimum at 2 , 2
176. a.
For the first minute it remains the same. During the second minute it steadily decreases. For the third
second it remains the same, and for the fourth second it steadily and slowly increases.
b.
Acceleration is the change in velocity over time, or m/min
min
c.
for 0 t 1
0
20 for 1 t 2
a(t)
0 for 2 t 3
10 for 3 t 4
d.
It does not change when
e.
On [3, 4] acceleration is positive because his velocity is increasing.
f.
How his velocity is changing.
177. a.
m .
min2
a(t) 0 .
Points that have positive y-vlaues: A, B
b.
Speed is the absolute value of velocity, so the point with the greatest y : E
c.
Acceleration is the slope of a velocity graph, so points where the slope is negative: C, D
d.
Points where the y-value is zero: C, G
178. a.
A 3(3) 6(1) 1(2) 3(1) 8 miles
b.
See graph at right.
The graph should reflect negative area on 3 < t < 9
over the x-axis.
c.
A, C, or D
d.
D; If she starts 3 miles from home and her
displacement is 8 miles, she will be 11 miles from
home at t = 13.
Chapter 1 Solutions
v(t
)
23
�179. a.
For example: The bug starts at rest, and for the first minute it quickly accelerates. It maintains a high
speed, decelerates, maintains a lower speed, then decelerates and stops. After a few minutes it accelerates
in the opposite direction and maintains a low speed in that direction, and then slows to a stop.
b.
The bug is then traveling in the negative direction.
c.
We estimate the area:
15
2
d.
5 2 53.5
3.52
2 3.5
3 10 4.25 2.75 2 1.25 24 ft
2
2
2
We need to estimate total area: subtract the second area from the first:
24 ( 01.5
1.52
20
) 24 (0.75 1.75 1) 24 3.5 20.5 ft
2
2
2
e.
Add areas: 24 3.5 27.5 ft
f.
When the bug never travels in the negative direction (backward).
g.
Carl is correct, we would need information about the initial position to answer this question.
h.
The bugs total displacement was 20 feet, so 7 + 20 = 13: (13, 0).
180. a.
Traveling upward but slowing down.
b.
Traveling downward but slowing down.
c.
Traveling upward (not slowing or speeding up).
d.
At rest, but being pulled downward.
e.
Negative velocity, positive acceleration.
181. See graph at right.
a.
The global maximum point represents the greatest velocity.
b.
Reflect the negative values above the x-axis.
c.
The global maximum point of the speed graph.
On the velocity graph it is the global minimum.
d.
Speed is the absolute value of velocity.
182. a.
b.
v(t)
*
t
**
11 in.3
V 14 (92 ) 14 (8.752 ) L 14 (7.52 ) 14 (7.252 ) 132.6875 or 132 16
Starting from the bottom with radius changing by 0.5 in:
30.75 in.3
V 14 (2)2 14 (2.5)2 L 14 (5)2 14 (5.5)2 123
4
He should end at 12 5 (2) 2 .
The important points are (0, 12) and (5, 2).
distance
183. For example:
10
5
time
5
184. a.
b.
c.
See graph at right.
12
ft
s
200
100
v(1)
time
Trapezoid or midpoint methods are okay, we need to estimate area.
Trapezoid: 012
2
velocity
1248
4895
6 30 71.5 107.5 ft.
2
2
Midpoint: 12(.5)2 12(1.5)2 (2.52 52(2.5) 52) 3 27 71.75 101.75 ft
d.
24
50 + answer to part (c) = 157.5 ft
Calculus Solutions
� x 2 3,
4 0 when x 2 , we can have three regions: f (x) x 2 5,
2
x 3,
D (, ) R [1, )
Since x 2
185.
x 2
2 x 2
x2
3
2
186. This can be found using polynomial division: x 3x2 4 x1 x 3 3x2
, so b(x) x 3 . The term
2
x 1
3x2 will be insignificant for large positive or negative x.
x 2 1
x 1
As x , y . As x , y . Notice asymptotes as x 1 .
As x 1 , y . As x 1 , y . As x 1 , y . As x 1 , y .
187. a.
b.
sin 2x sin x
2 sin x cos x sin x
2 cos x 1 or sin x 0, x 0,
cosx= 12 , x
sin x cos x 2 1
sin x cos x cos 2 sin x sin 2 1
sin x sin x 1
0 1
, 5 , 0,
3 3
No solution
c.
cos x sin x
sin x
cos x
2
cos x sin 2 x
2 3
2 3 sin x cos x
cos 2x 3 sin 2x
1 3
1
3
sin 2 x
cos 2 x
tan 2x
2x
, 76
, 13 , 7 , 19
x 12
12 12 12
188. a.
b.
It is a double cone, i.e., two cones with the same base.
V 13 bh 13 bh 23 r 2 12 . 202 122 r 2 , so r 202 122 16
V 23 162 12 2 256 4 2048 6433.98 un 3
189. a. g(5) (3(5) 1)2 (16)2 256
c.
49 (3x 1)2
7 3x 1
b. g(a 1) (3(a 1) 1)2 (3a 2)2 9a2 12a 4
7 3x 1
8 3x
7 3x 1
6 3x
8
3
2 x
x (3y 1)2
d.
x 3y 1
1 x 3y
1 x
3
y g 1 (x)
190. Fredos graph represents velocity, while Freidas represents distance.
Chapter 1 Solutions
25
�b.
c.
See graph at right.
d.
t 2 ,
0 t 1
d(t)
4t 4, 2 t
193. a.
t
0 0.5 1 1.5 2 3 4 5 6
d(t) 0 0.25 1 2.25 4 8 12 16 20
distance
20
10
time
The point with a maximum y-value: A
b.
Speed is the absolute value of velocity, so the point with the greatest y : C
c.
The point where the velocity changes from positive to negative: B
d.
5
distance
2t, 0 t 2
v(t)
t2
4,
192. a.
time
5
Acceleration is slope of velocity, so points where the slope is positive: D, E
194. Sample graph:
y
195. See graph at right. The graph starts with a large slope which gradually decreases until x 4
when it abruptly becomes large and negative. Gradually the slope levels out as x reaches 6 and
then increases thereafter, becoming larger and larger (and positive).
f (x) 3x 5, g(x) 4 x 2 , h(x) 2 cos x
196. a.
b.
i.
f (g(h( ))) f (g(2 cos( )) f (g(2)) f (4 (2)2 ) f (0) 3(0) 5 5
ii. g1(4) 4 4 x 2 x 0
h(g1(4)) h(0) 2 cos(0) 2
iii. f 1(h( )) f 1(2) 2 3x 5 3 3x x 1
197. a.
The rate is always positive, and increases each year.
b.
27962300
4
We could take the average rate between 1997 and 1999: 27962536
2
c.
260
2
496
4
124 people/year.
130 people/year.
un 3
199. There are two identical cones: V 13 r 2 h 13 r 2 h 23 r 2 h 23 52 5 250
3
200. For example, g(x)
201.
x
5.5
xd
20
x2
3
2
, f (x) x 6 , or g(x) x 23 , f (x) 3x 6 , or g(x) x 32 , f (x) x 6 .
5.5 d 55 d
, 20x 5.5 x 6 , 20x 5.5x 5.5d, 14.5x 5.5d, x 14.5
145
cos x 0, x
b.
x2
1 0,
1, D: ,
c.
x2
x 6 0, x 3x 2 0, D: x : x 3 and x 2
d.
x 1 0, x 1 and x2 16 0, x 2 16, x 4 or x 4 , so the x-values which meet both conditions
202. a.
x2
n, D: x : x
11
29
n for some integer n
are x 4 . D : x : x 4
203. a: g(x) f (x) , i.e., g(x) 1 2x 1 (21 )x 1 0.5 x
26
Calculus Solutions
