Post on 30-Mar-2015
Welcome to the Webinar“Live” Review for Test 3 (MAC 1105)
We will start promptly at 8:00 pm
Everyone will be placed on mute
I am happy that you are able to join us
“Live” Review for Test 3 (MAC 1105)
The following slides present sample problems similar to the test content, including the worked-out solutions.
These are a few problems and do not include all the competencies tested on Test 3.
To be prepared for the test, you must review the material from all the corresponding sections and follow the Study Guide posted on Blackboard!
The function whose graph is shown below is a one-to-one function.
True or False
(-3, 3) (3, 3)
Answer: False
Does not pass the horizontal line test. In a 1-1 function different inputs will always result in different outputs. In our example, inputs -3 and 3 yield the same output, 3; The given function is not 1-1.
Remember for a function, one input gives one output, and for a one-to-one function, one output gives one input.
The function f(x) = 2x + 5 is a one-to-one function.
a. True b. False
y = 2x + 5 is a linear function
Algebraically:
Answer: True Passes horizontal line test; two different inputs will not yield
the same output.
Input -2 0 1/2 3 10
Output 1 5 6 11 25
Find the inverse of f(x) = {(-5, 6), (0, 9), (1/2, -6), (3, 4)}
We must check something first! What?Is this a one-to-one function?
Your time to work!
Find the inverse of f(x) = {(-5, 6), (0, 9), (1/2, -6), (3, 4)} This is a one-to-one function, since different inputs produce different outputs.
Finding the inverse: Interchange the x-and-y coordinates.
So, f -1(x) = {(6, -5), (9, 0), (-6, 1/2), (4, 3)}
Find the inverse function for: f(x) = x + 2 5 y = x + 2 5
Interchange variables: x = y + 2 5
Solve for new y: first multiply both sides by 5 (5)x = (y + 2) (5) 5 5x = y + 2
y = 5x - 2 So, f-1(x)= 5x - 2
Find the domain and range of the inverse:
{(-5, 6), (0, 9), (1/2, -6), (3, 4)}
The domain of the inverse is the range of the original function.
The range of the inverse is the domain of the original function.
So, Domain of inverse = 6; 9; -6; 4
Range of inverse = -5; 0; 1/2; 3
State whether the inverse exists: y = x2 – 5.
This is a parabola; it fails the horizontal line test, thus, it isnot one-to-one.
Attempting to find the “inverse” would result in y = sqrt(x + 5) whose graph is
where, with the exception of x = -5, every input would have twodifferent outputs. Not a function! We would need to restrict the domain of the given function.
If f(x) = 2x – 1 and g(x) = x + 4, find (f – g)(x).
(f – g)(x) = f(x) – g(x)
= (2x – 1) – (x + 4) = 2x – 1 – x – 4 = x – 5
Find (f g)(x)
(f g)(x) = f(x) g(x) = (2x – 1)(x + 4) = 2x2 + 7x – 4
Find (f/g)(x)
(f/g)(x) = f(x)/g(x) = 2x – 1 x + 4x –4
If f(x) = 2x – 1 and g(x) = x + 4, find (f – g)(3).
(f – g)(x) = f(x) – g(x)
Two approaches:Find (f – g)(x) and then find (f – g)(3).
(f – g)(x) = (2x – 1) – (x + 4) = 2x – 1 – x – 4 = x – 5
So, (f – g)(3) = 3 – 5 = -2
OR
Find f(3) and g(3) and then subtract.
f(3) = 2(3) – 1 = 5 and g(3) = 3 + 4 = 7
So, (f – g)(3) = 5 – 7 = -2
Determine which represents "g composed with f "
Please select your answer.
))(( xfg
))(( xgf
"g composed with f”
))(( xfg
That is, function f will be the input for function g.
Example: If f(x) = 2x + 3 and g(x) = x – 8
then “2x + 3” will be the input for function g.
Since g(x) = x – 8
g(f(x)) = (2x + 3) – 8
= 2x – 5
If f(x) = -x2 and g(x) = , find (f o g)(x)
(f o g)(x) = f(g(x))
That is, function g will be the input for function f.
So, f(g(x))
= f( ) = - ( )2
= -(x + 2)
= -x − 2
2x
2x
2x
If f(x) = -5x and g(x) = x2 + 2, find (g o f)(3). One approach: Calculate (g o f)(x) = g(f(x)) and then evaluate the resulting function when x = 3
g(f(x)) = g(-5x) = (-5x)2 + 2 = 25x2 + 2
Thus, (g o f)(3) = 25(3)2 + 2 = 227
Another approach: Since (g o f)(x) = g(f(x)), calculate f(3), then substitute the resulting value into g and evaluate:
f(3) = -5(3) = -15
Then, g(-15) = (-15)2 + 2 = 227
Degree? Highest exponent is 3, therefore degree is 3
Leading term? -x³
Leading coefficient? -1
Constant term? -8
853)( 32 xxxxf
Use the graph to determine the following for the polynomial function:1. Even or odd degree?2. Positive or negative leading coefficient?3. Number of turning points?
1. Odd degree: One end of the graph points up; the other end points down.
2. Negative: The right-hand end points down.
3. Turning points: 2
Even or odd degree? Positive or negative leading coefficient?
Your time to answer the question!
Both ends point down: Even degree and negative leading coefficient
Even or odd degree? Positive or negative leading coefficient?
Determine the intercepts of the polynomial function
To find y-intercept: Let x = 0; find f(0).To find x-intercepts: Let y = 0; solve f(x) = 0
y-intercept:f(0) = (0 – 2)(30 – 1)(0 + 4) = (-2)(-1)(4) = 8
y = 8 or the ordered pair (0, 8)
x-intercepts:(x – 2)(3x – 1)(x + 4) = 0
x – 2 = 0 3x – 1 = 0 x + 4 = 0
x = 2, 1/3, -4 or the ordered pair (2, 0), (1/3, 0), (-4, 0)
4132)( xxxxf
The graph of f(x) = (x – 1)( x + 3)(x – 3)² will cross the x-axis atx = 3.
True or False?
The zeros of the function are: -3, 1, 31 with multiplicity 1-3 with multiplicity 13 with multiplicity 2
If k is a zero of odd multiplicity, the graph will cross the x-axisat k.
If k is a zero of even multiplicity, the graph will touch the x-axisand turn around at k.
So, the answer is False, because x = 3 is a zero with an evenmultiplicity.
Determine the factored form of the equation of the polynomial whose graph is shown below.
a. x(x + 4)(x – 4)
b. -x(x + 4)(x – 4)
c. (x + 4)²(x – 4)²
d. (x + 4)(x – 4)²
First, one end points up, the other end points down, so it is an odd-degree polynomial. (Cannot be “c”)
It crosses the origin, so x = 0 is a real zero. (Cannot be “d”)
Right-hand end points down, so, the leading coefficient is negative.
Answer: b
Find the domain of the rational function:
y = 7 x² – 49
The denominator cannot equal zero:
x² – 49 0
(x + 7) (x – 7) 0
x -7 and x 7
or in interval notation (-infinity -7) U (-7, 7) U (7, infinity)
Find the vertical asymptote(s) of
a. x = 2/5, 3b. x = -2/5, -3 c. x = 11/5, -11/5 d. x = 0
5x² – 17x + 6 = 0
(5x – 2)(x – 3) = 0
5x – 2 = 0 or x – 3 = 0
x = 2/5, 3
Answer is: a
y = 7x 5x² – 17x + 6
Horizontal Asymptotes
Let m = degree of numerator and n = degree of denominator
If m < n horizontal asymptote is line y = 0 (the x-axis)If m = n horizontal asymptote is ratio of leading coefficientsIf m > n no horizontal asymptote
Find the horizontal asymptote, if it exists:
a. y = 7x² b. y = 7x3 c. y = 7x x² – 3x + 6 x² – 3x + 6 x² – 3x + 6
a. m = n So, y = 7 = 7 is a horizontal asymptote 1
b. m > n So, there is no horizontal asymptote
c. m < n So, y = 0 is a horizontal asymptote
Find the domain and the x-intercepts:xxx
xf30
)(2
xxx
xf)6)(5(
)(
Domain: x 0 or in interval notation (-infinity, 0) U (0, infinity)
x-intercepts: Solve f(x) = 0,
(x – 5) (x + 6) = 0 So, x-intercepts: 5, -6 or in ordered pair (5, 0),(-6, 0)
NOTE: It is important that you follow the instructions on the test. If asked for ordered pair, do so!
If you are not asked for ordered pair, then just write the values separated by commas (,) or semicolons (;) as specified on the question.
0)6)(5(
xxx
The average cost, A, per item of producing x number of a new product-item is given by A(x) = 620 + 5.25x xa. Find and interpret A(400). b. If the average cost per item were $7.50, how many could they produce? c. Graph the average cost function using [0, 500, 50] by [0, 100, 10].
a. A(400) = 620 + 5.25(400) = 6.8 400The average cost per item of producing 400 items is $6.80.
b. 620 + 5.25x = 7.5 x
(x) 620 + 5.25x = 7.5 (x) x620 + 5.25x = 7.5x
x = 275.6 276 items
c. Graph the average cost function using [0, 500, 50] by [0, 100, 10].
y = 620 + 5.25x x
Y1 = (620 + 5.25x)/x
Average cost
Number of T-shirts
This "live" review session has covered
content addressed on test 3, but you
need to review chapters 5 and 7
and complete all the problems
assigned on the study guide, so that
you are well-prepared for the test.
Good luck Do Well!
gacosta@valenciacollege.edu