Calculus
5th Edition
ISBN: 9781429241861
Author: Laura Taalman, Peter Kohn
Publisher: W. H. Freeman
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Question
Chapter 2.3, Problem 67S
To determine
To find: the derivative of the given absolute function.
Expert Solution & Answer
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In Exercises 11–18, graph each function by making a table of
coordinates. If applicable, use a graphing utility to confirm your
hand-drawn graph.
11. f(x) = 4"
13. g(x) = ()*
15. h(x) = (})*
17. f(x) = (0.6)
12. f(x) = 5"
14. g(x) = ()
16. h(x) = (})*
18. f(x) = (0.8)*
%3!
Use Definition 0.10 to show that each pair of functions in
Exercises 67–70 are inverses of each other.
1
2
67. f(x) =2 – 3x and g(x) = -x+ 3
68. f(x) = x² restricted to [0, 0) and g(x) = V
69. f(x) =
and g(x) =
1+x
1-x
1
1
70. f(x) =
and g(x)
2x
2x
a) Find the domain of f, g, f + g, f – & fg, ff, f/ g
b) Find (f + g)(x), (f – g)(x), (fg)(x), (ff)(x),
For each pair of functions in Exercises 17–32:
15. (8
and g/f.
Find f+ g)(x), (f – g)(x), (fg)(x), (ff)(x),
(f/8)(x), and (g/f)(x).
17. f(x) = 2x + 3, g(x) = 3 – 5x
%3D
18. f(x) = -x + 1, g(x) = 4x – 2
19. f(x) = x – 3, g(x) = Vx + 4
20. f(x) = x + 2, g(x) = Vx – 1
21. f(x) = 2x – 1, g(x) = – 2x²
22. f(x) = x² – 1, g(x) = 2x + 5
23. f(x) = Vx – 3, g(x) :
= Vx + 3
Chapter 2 Solutions
Calculus
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- Each of Exercises 25–36 gives a formula for a function y = f(x). In each case, find f-x) and identify the domain and range of f-. As a check, show that f(fx)) = f-"f(x)) = x. 25. f(x) = x 26. f(x) = x, x20 %3D %3D 27. f(x) = x + 1 28. f(x) = (1/2)x – 7/2 30. f(x) = 1/r, x * 0 %3D 29. f(x) = 1/x, x>0 x + 3 31. f(x) 32. f(x) = VE - 3 34. f(x) = (2x + 1)/5 2 33. f(x) = x - 2r, xs1 (Hint: Complete the square.) * + b x - 2' 35. f(x) = b>-2 and constant 36. f(x) = x? 2bx, b> 0 and constant, xsbarrow_forwardEach of Exercises 81–84 shows the graphs of the first and second derivatives of a function y = f(x). Copy the picture and add to it a sketch of the approximate graph of f, given that the graph passes through the point P.arrow_forwardIn Exercises 69–76, graph each function, not by plotting points, but by starting with the graph of one of the standard functions presented in Figures 1.14–1.17 and applying an appropriate transformation. 69. y = -sqrt(2x + 1) 70. y =sqrt(1-x/2) 71. y = (x - 1)3 + 2 72. y = (1 - x)3 + 2 73. y = 1 /2x - 1 74. y=(2/x2)+1 72. y = (1 - x)3 + 2 75. y = -(x )^(1/3) 76. y = (-2x)^(2/3)arrow_forward
- In Exercises 126–131, use a graphing utility to graph each function. Use a [-5, 5, 1] by [-5, 5, 1] viewing rectangle. Then find the intervals on which the function is increasing, decreasing,. or constant. 126. f(x) = x' – 6x² + 9x + 1 127. g(x) = |4 – x²| 128. h(x) = |x – 2| + |x + 2| 129. f(x) = x*(x – 4) 130. g(x) = x 131. h(x) = 2 –arrow_forwardIn Exercises 47–62, say whether the function is even, odd, or neither. Give reasons for your answer.arrow_forwardIn Exercises 139–142, determine whether each statement is true or false. If the statement is false, make the necessary change(s) to produce a true statement. x2 – 25 = x - 5 5 139. X - x? + 7 140. = x? + 1 7 7 domain of f(x) = is x(x – 3) + 5(x - 3) 141. The (-0, 3) U (3, 0). 142. The restrictions on the values of x when performing the division f(x) h(x) g(x) k (x) are g(x) + 0, k(x) # 0, and h(x) + 0.arrow_forward
- In Exercises 7–10, determine from its graph if the function is one-to-one.arrow_forwardSometimes a derivative contains negative exponents, andsimplification requires that all exponents be positive.Write each of the expressions in Exercises 46–49 withoutnegative exponents.arrow_forwardIn Exercises 9–16, determine whether the function is even, odd, or neither.arrow_forward
- In Exercises 73–78, the graph of f is shownin the figure. Sketch a graph of the derivative of f. To print anenlarged copy of the graph, go to MathGraphs.com.image5arrow_forwardIn Exercises 41–44, sketch a possible graph for a function f that hasthe stated properties.arrow_forwardIn Exercises 63–65, find the domain and range of each composite function. Then graph the composition of the two functions on separate screens. Do the graphs make sense in each case? Give reasons for your answers. Comment on any differences you see. 63. a. y = tan-1 (tan x) b. y = tan (tan-1 x) 64. a. y = sin-1 (sin x) b. y = sin (sin-1 x) 65. a. y = cos-1 (cos x) b. y = cos (cos-1 x)arrow_forward
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