1001 Algebra Problems.PDF

734. d.Statement ais true because, by definition, a
     positive slope ofmmeans that the graph of the
     line rises vertically m units for every positive
     unit increase in x. For example the graph of
     the function f(x) = x^1  2 intersects both Quad-
     rants I and II, illustrating the truth of state-
     mentb. (See the following graph.) Statement c
     is true because the vertex is the point at which
     the maximum or minimum value of a quadratic
     function occurs. These graphs resemble the let-
     ter U or an upside down U, so that the graph is
     indeed decreasing on one side of the vertex and
     increasing on the other side of the vertex.


735. b.The x-values of the points of intersection of
     the graphs off(x) = –4xand g(x) = 2xmust
     satisfy the equation–4x= 2x, which is solved
     as follows:

–4x= 2x

(–4x)^2 = (2x)^2

16 x^2 = 4x

16 x^2 – 4x= 0

4 x(4x– 1) = 0

x= 0,^14 

736. b.The x-values of the points of intersection of
     the graphs off(x) = xand g(x) = 3xmust
     satisfy the equation x= 3x, which is
     solved as follows:

x= 3x

x– 3x= 0

–2x= 0

x= 0

Set 47 (Page 112)

737. d.We apply the general principle that the graph
     ofy= g(x+ h) + kis obtained by shifting the
     graph ofy= g(x) right (resp. left) hunits ifh
     0 (resp.h0), and up (resp.) down kunits
     ifk0 (resp.k0). Here, observe that f(x)
     = (x+ 2)^3 – 3 = g(x+ 2) – 3, so the correct
     choice is d.


738. d.In order for the turning point of the parabola
     to be in Quadrant II, its x-coordinate must be
     negative and its y-coordinate must be positive.
     Note that the turning point ofy= –(x+ 2)^2 + 1
     is (–2, 1), so that the correct choice is d.


739. b.The turning point ofy= (x– 2)^2 – 2 is (2, –2),
     while the turning point ofy= x^2 is (0,0). There-
     fore, we would shift the graph ofy= x^2 to the
     right 2 units and down 2 units.


740. c.The graph ofy= g(x+ h) + kis obtained by
     shifting the graph ofy= g(x) right (resp. left)
     hunits ifh0 (resp.h0), and up (resp.
     down) kunits ifk0 (resp.k0). Here,
     observe that f(x) = (x– 4)^3 + 1 = g(x– 4) + 1,
     so the correct choice is c.


741. d.The graph ofy= g(x+ h) + kis obtained by
     shifting the graph ofy= g(x) right (resp. left)
     hunits ifh0 (resp.h0), and up (resp.
     down) kunits ifk0 (resp.k0). Here,
     observe that f(x) = (x– 2)^2 – 4 = g(x– 2) – 4,
     so the correct choice is d.

–10 –8 –6 –4 –2 2 4 6 8 10

–2

–4

–6

–8

–10

10

8

6

4

2

ANSWERS & EXPLANATIONS–