Assignment 25

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course mth 158

7/25 12:30 am

025. `* 25

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Question: * 3.5.12 (was 3.4.6). Upward parabola vertex (0, 2).

What equation matches this function?

y = x^2 + 2

The correct equation is y = x^2 + 2. How can you tell it isn't y = 2 x^2 + 2?. How can you tell it isn't y

= (x+2)^2.

(x+2)^2 would shift the parabola to the left 2 units instead of veritically.

GOOD STUDENT ANSWERS:

it isnt y = 2x^2 + 2 because that would make it a verical stretch and it isnt vertical it is just a

parabola.

it isnt y = (x+2)^2 because that would make it shift to the left two units and it did not.

INSTRUCTOR NOTE:

Good answers. Here is more detail:

The basic y = x^2 parabola has its vertex at (0, 0) and also passes through (-1, 1) and (1, 1).

y = 2 x^2 would stretch the basic y = x^2 parabola vertically by factor 2, which would move every point

twice as far from the x axis. This would leave the vertex at (0, 0) unchanged and would move the points (-

1, 1) and (1, 1) to (-1, 2) and (1, 2).

Then y = 2x^2 + 2 would shift this function vertically 2 units, so that the points (0, 0), (-1, 2) and (1,

2) would shift 2 units upward to (0, 2), (-1, 4) and (1, 4).

The resulting graph coincides with the given graph at the vertex but because of the vertical stretch it is

too steep to match the given graph.

The function y = (x + 2)^2 shifts the basic y = x^2 parabola 2 units to the left so that the vertex would

move to (-2, 0) and the points (-1, 1) and (1, 1) to (-3, 1) and (-1, 1). The resulting graph does not

coincide with the given graph.

y = x^2 + 2 would shift the basic y = x^2 parabola vertically 2 units, so that the points (0, 0), (-1, 1)

and (1, 1) would shift 2 units upward to (0, 2), (-1, 3) and (1, 3). These points do coincide with points

on the given graph, so it is the y = x^2 + 2 function that we are looking for. **

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Self-critique (if necessary):

OK

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Self-critique rating #$&*OK

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Question: * 3.5.16 (was 3.4.10). Downward parabola.

The correct equation is y = -2 x^2. How can you tell it isn't y = 2 x^2?. How can you tell it isn't y = -

x^2?

YYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYY

Your solution:

The -2 makes the parabola face downward. It also stretches the points to (-1, 2) and (1,2). Without the

2, it would be (-1,1) and (1,1).

confidence rating #$&*3

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Given Solution:

* * The basic y = x^2 parabola has its vertex at (0, 0) and also passes through (-1, 1) and (1, 1).

y = -x^2 would stretch the basic y = x^2 parabola vertically by factor -1, which would move every point to

another point which is the same distance from the x axis but on the other side. This would leave the vertex

at (0, 0) unchanged and would move the points (-1, 1) and (1, 1) to (-1, -1) and (1, -1).

y = -2 x^2 would stretch the basic y = x^2 parabola vertically by factor -2, which would move every point

to another point which is twice the distance from the x axis but on the other side. This would leave the

vertex at (0, 0) unchanged and would move the points (-1, 1) and (1, 1) to (-1, -2) and (1, -2). This graph

coincides with the given graph.

y = 2 x^2 would stretch the basic y = x^2 parabola vertically by factor 2, which would move every point

twice the distance from the x axis and on the same side. This would leave the vertex at (0, 0) unchanged

and would move the points (-1, 1) and (1, 1) to (-1, 2) and (1, 2). This graph is on the wrong side of the

x axis from the given graph. **

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Self-critique (if necessary):OK

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Self-critique rating #$&*OK

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Question: * 3.5.18 (was 3.4.12). V with vertex at origin.

What equation matches this function?

The correct equation is y = 2 | x | . How can you tell it isn't y = | x | ?. How can you tell it isn't y =

| x | + 2?

YYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYY

Your solution:

if the function was y = |x|, there would be points at (-1, 1) and (1,1). There are points at (-1,2) and

(1,2). if the function was y= |x| + 2, the graph would be moved vertically up by 2 units.

confidence rating #$&*3

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Given Solution:

* * The basic y = | x | graph is in the shape of a V with a 'vertex' at (0, 0) and also passes through (-

1, 1) and (1, 1).

The given graph has the point of the V at the origin but passes above (-1, 1) and (1, 1).

y = | x | + 2 would shift the basic y = | x | graph vertically 2 units, so that the points (0, 0), (-1, 1)

and (1, 1) would shift 2 units upward to (0, 2), (-1, 3) and (1, 3). The point of the V would lie at (0,

2). None of these points coincide with points on the given graph

y = 2 | x | would stretch the basic y = | x | graph vertically by factor 2, which would move every point

twice the distance from the x axis and on the same side. This would leave the point of the 'V' at (0, 0)

unchanged and would move the points (-1, 1) and (1, 1) to (-1, 2) and (1, 2). This graph coincides with the

given graph. **

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Self-critique (if necessary):OK

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Self-critique rating #$&*OK

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Question: * 3.5.30 (was 3.4.24). Transformations on y = sqrt(x).

What basic function did you start with and, in order, what transformations were required to obtain the

graph of the given function?

What is the function after you shift the graph up 2 units?

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Your solution:

y = sqrt (x) + 2

y = sqrt (-x) + 2

y = sqrt -(x + 3) + 2

confidence rating #$&*3

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Given Solution:

* * ERRONEOUS STUDENT RESPONSE: y = x^2 + 2

INSTRUCTOR CORRECTION: y = sqrt(x) is not the same as y = x^2. y = sqrt(x) is the square root of x, not the

square of x.

Shifting the graph of y = sqrt(x) + 2 up so units we would obtain the graph y = sqrt(x) + 2. **

What is the function after you then reflect the graph about the y axis?

** To reflect a graph about the y axis we replace x with -x.

It is the y = sqrt(x) + 2 function that is being reflected so the function becomes

y = sqrt(-x) + 2. **

What is the function after you then fhist the graph left 3 units?

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Your solution:

y = sqrt (-(x + 3)) + 2

confidence rating #$&*3

^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^

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Given Solution:

* * To shift a graph 3 units to the left we replace x with x + 3.

It is the y = sqrt(-x) + 2 function that is being reflected so the function becomes

y = sqrt( -(x+3) ) + 2. **

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Self-critique (if necessary):OK

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Self-critique rating #$&*OK

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Question: * 3.5.42 (was 3.4.36). f(x) = (x+2)^3 - 3.

What basic function did you start with and, in order, what transformations were required to obtain the

graph of the given function?

Describe your graph. Give three points on your graph and tell to which basic points on the graph of your

basic function each corresponds.

YYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYY

Your solution:

f(x) = (x+2)^3 - 3

The graph was 2 units to the left.

f(x) = x^3 - 3

The graph was 3 units below.

f(x) = x^3

f(x) = x(+2)^3 - 3

the middle of the graph would be (0-2,0-3)or (-2, -3)

A point to the left would (-1 - 2, -1 - 3), so (-3, -4)

A point to the right would be (1 - 2,1 -3), so (-1, -2).

confidence rating #$&*2

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Given Solution:

* * Starting with y = x^3 we replace x by x +2 to shift the graph 2 units left. We obtain

 

y = (x + 2)^3.

 

We then shift this graph -3 units vertically by adding -3 to the value of the function, obtaining

 

y = (x + 2 )^3 - 3.

 

The basic points of the y = x^3 graph are (-1, -1), (0, 0) and (1, 1). Shifted 2 units left and 3 units down these points become

 

(-1 - 2, -1 -3 ) = (-3, -4),

(0 - 2, 0 -3) = (-2, -3) and

(1 - 2, 1 -3) = (-2, -2).

 

The points you give might not be the same three points but should be obtained by a similar process, and you should specify both the original point and the point to which it is transformed. **

**

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Self-critique (if necessary):?????I'm not sure what I did wrong. Why do we replace x with x-3? Does (x+2)

not mean that we shift the graph 2 to the left? Any clarification is appreciated????

The correct given solution has been inserted. It appears I got the 2 and 3 backwards when I wrote the original solution.

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Self-critique rating #$&*1

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Question: * 3.5.58 (was 3.4.40). h(x) = 4 / x + 2.

What basic function did you start with and, in order, what transformations were required to obtain the

graph of the given function?

Describe your graph. Give three points on your graph and tell to which basic points on the graph of your

basic function each corresponds.

YYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYY

Your solution:

h = 1/x

h = 4/x, meaning we stretch to 4

h = 2, meaning we shift up by 2 units.

The original graph would include points (-1, -4) and (1,4)

Our graph, however, would include the following

(-1, -4 + 2) or (-1, -2)

(1,4 +2) or (1,6)

The horizontal asymptote would be at y = 2, and vertical at x = 0.

confidence rating #$&*2

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Given Solution:

* * Note on the function y = 1 / x.

Your text does not seem to have included an explanation of the graph of y = 1 / x in this section. Your

author has good reasons for this (a very good discussion follows in the next chapter when it discusses

rational functions), but I think the following explanation will be useful to many students.

A short table for y = 1 / x helps explain the features of its graph:

x y = 1 / x

1/10 10

1/2 2

1 1

2 1/2

10 1/10

Before reading further you should hand-sketch a graph corresponding to this table. You aren't likely to

understand the rest of this explanation without taking a couple of minutes to do so.

We see that as x increases from 1 to 2 to 10 the value of 1/x decreases from 1 to 1/2 to 1/10. As x

continues to increase, y = 1/x will continue to decrease, but will still remain positive. Thus, as we move

to the right the graph descends toward the x axis, never reaching it but becoming closer and closer, with

no limit to how close it will eventually become.

Now we move to the left of x = 1, moving through decreasing x values which approach 0. As x decreases from

1 to 1/2 to 1/10, the value of y = 1 / x increases from 1 to 2 to 10. As the value of x gets smaller and

smaller, approaching 0 but never reaching 0, the value of 1 / x increases more and more rapidly.

You should identify the points (1/10, 10), (1/2, 2), (1, 1), (2, 1/2) and (10, 1/10) on the graph below,

and compare this graph to yours.

The positive x axis is a horizontal asymptote for the graph: as we move to the right the graph approaches

this line, with no limit to how closely it will eventually approach.

The positive y axis is also an asymptote. The closer x approaches 0, the greater the value of the

function. There is no limit to how closely x can approach 0, so there is no limit to how large the values

of 1 / x can become. There is no limit to how closely the graph approaches the y axis, nor is there a

limit to how large the y values can become.

Now we consider the more abbreviated table below:

x y = 1 / x

-2 -1/2

-1 -1

-1/2 -2

1/2 2

1 1

2 1/2

This table includes three negative values of x. You should add the corresponding three points to your

graph. If you do so it should become clear to you how the entire graph of y = 1 / x is constructed, and

why.

Having plotted these points the trend of the graph should be pretty clear to you. All negative values of x

result in negative values of y = 1 / x. As we move to the left from x = -1, the graph moves closer to the

x axis, and the negative x axis is a horizontal asymptote. As we move from x = -1 toward x = 0, the graph

approaches the y axis as an asymptote.

The graph is depicted below. You should locate the three new points (-2, -1/2), (-1, -1) and (-1/2, -2) on

this graph. Be sure you understand how the horizontal asymptotes on the positive and negative x axes

occur, as well as the vertical asymptotes on the positive and negative y axes.

It is useful to also notice the symmetry behaviors of the graph.

Now for an explanation of the problem:

We start with the basic reciprocal function y = 1 / x, which has vertical asymptotes at the y axis and

horizontal asymptotes along the x axis and passes through the points (-1, -1) and (1, 1).

To get y = 4 / x we must multiply y = 1 / x by 4. Multiplying a function by 4 results in a vertical stretch

by factor 4, moving every point 4 times as far from the x axis.

This will not affect the location of the vertical or horizontal asymptotes but for example the points (-1,

-1) and (1, 1) will be transformed to (-1, -4) and (1, 4). At every point the new graph will at this point

be 4 times as far from the x axis.

At this point we have the graph of y = 4 / x. The function we wish to obtain is y = 4 / x + 2.

Adding 2 in this manner increases the y value of each point by 2. The point (-1, -4) will therefore become

(-1, -4 + 2) = (-1, -2). The point (1, 4) will similarly be raised to (1, 6). Since every point is raised

vertically by 2 units, with no horizontal shift, the y axis will remain an asymptote. As the y = 4 / x

graph approaches the x axis, where y = 0, the y = 4 / x + 2 graph will approach the line y = 0 + 2 = 2, so

the horizontal asymptotes to the right and left will consist of the line y = 2.

Our final graph will have asymptotes at the y axis and at the line y = 2, with basic points (-1, -2) and

(1, 6).

STUDENT QUESTION:

When you say multiplying a function by 4, are you saying you would do this:

1/x * 4/1 and if so, wouldn’t that give you 4/x then would you substitute the x = 1 and x = -1 to get

the next set of points (-1, -4) and (1, 4)?

INSTRUCTOR RESPONSE:

That is so.

However note that (1, 4) is 4 times as far from the x axis as the point (1, 1), and (-1, -4) is 4 times as

far from the x axis as (-1, -1).

Given a graph of y = 1 / x, we could have simply taken each point of the graph and moved it 4 times as far

from the x axis, without ever calculating y = 4 / x. We might well want to calculate the values, but it's

important to visualize, without the point-by-point calculations, how the graphs transform.

For example the graph below depicts the two functions. You should identify the points (-1, -1) and (1, 1),

and also the points (-1, -4) and (1, 4). Then look at the vertical blue line and convince yourself that

the point where this line intersects the y = 4 / x graph is four times as far from the x axis as its

intersection with the y = 1 / x graph. Then visualize several other vertical lines, and observe how the

same statement applies no matter where you draw the vertical line (with the exception of the y axis, where

neither function is defined).

STUDENT QUESTION:

So, by adding the 2, the original points (-1, -4) and (1, 4) were just used to show how 4/x would look, and

then by adding the y = 4/x + 2 is the “real” graph we are trying to obtain?

INSTRUCTOR RESPONSE:

That's about right.

When we add 2 to get the function y = 4 / x + 2, we are increasing the y values by 2. This 'raises' the y

= 4 / x graph 2 units. The graph below depicts the previous graphs of y = 1 / x and y = 4 / x, as well as

the 'new' graph y = 4 / x + 2.

You can note that the point (1, 4) on the y = 4 / x graph transforms to the point (1, 6), and the point (-

1, -4) to the point (-1, -2). The 'blue' vertical line intersects the 'new' graph at a point 2 units

higher than the y = 4 / x graph, and the same will be true of any vertical line.

STUDENT QUESTION:

It says where y = 0, the y = 4/x + 2 graph will approach the line y = 0 + 2 = 2……throws me off. I don’t

understand this part…..and the horizontal asymptotes to the right and left will consist of the line y = 2…I

tried

drawing the graph and looking at it, but it doesn’t appear that anything = 2.

INSTRUCTOR RESPONSE:

The x axis is the line y = 0.

To see this, pick several points on the x axis. What is the y coordinate of each? Your answer will always

be that the y coordinate is 0.

If we raise each point of the line y = 0 by 2 units we will get the line y = 2.

To see this, pick several points on the x axis and 'raise' each of them by 2 units in the y direction.

Your new y coordinate will always be 2. Your points will all lie on the line y = 2.

The y = 4 / x graph had an asymptote at the x axis. That is, it was asymptotic to the line y = 0.

The y = 4 / x + 2 graph will therefore have an asymptote at y = 2.

The graph below is the same as the previous graph, but the line y = 2 has been added. You should observe

how the graph of y = 4 / x + 2 approaches this line as a horizontal asymptote.

Here's a picture of the final graph of y = 4 / x + 2, along with the horizontal asymptote y = 2.

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Self-critique (if necessary):Ok

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Self-critique rating #$&*Ok

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Question: * 3.5.60 (was 3.4.54). f(x) = -4 sqrt(x-1).

What basic function did you start with and, in order, what transformations were required to obtain the

graph of the given function?

Describe your graph. Give three points on your graph and tell to which basic points on the graph of your

basic function each corresponds.

YYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYY

Your solution:

f(x) = -4 sqrt (x-1), meaning we will stretch the graph to 4,and to the opposite side of the x-axis.

f(x) = sqrt (x - 1), meaning the graph will shift one unit to the right.

f(x) = sqrt (x) includes points (0,0), (1,1) and (4,2)

f(x) = sqrt (x-1) includes points(1,0), (2, 1) and (5,2)

f(x)=-4sqrt (x-1) includes points(1,0), (2,-4) and (5, -8)

confidence rating #$&*3

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Given Solution:

* * Starting with the basic function y = sqrt(x) we replace x by x - 1, which shifts the graph right 1

unit, then we stretch the graph by factor -4, which moves every point 4 times further from the x axis and

to the opposite side of the x axis.

The points (0, 0), (1, 1) and (4, 2) lie on the graph of the original function y = sqrt(x).

Shifting each point 1 unit to the right we have the points (1, 0), (2, 1) and (5, 2).

Then multiplying each y value by -4 we get the points

(1, 0), (2, -4) and (5, -8).

Note that each of these points is 4 times further from the x axis than the point from which it came, and on

the opposite side of the x axis. **

STUDENT QUESTION

I see that you multiply the y values by -4 but why do you multiply the y values and not the x values?

INSTRUCTOR RESPONSE

Think about the graph of y = 2 x^2 compared to the graph of y = x^2.

To make a brief table for either function you might use x values -1, 0 and 1.

The second function gives you points (-1, 1), (0, 0) and (1, 1).

The first function gives you points (-1, 2), (0, 0) and (1, 2).

If you multiply the y values of the first function by 2, you get the y values of the second. The x values

don't change.

In general if the function is y = f(x), multiplying f(x) by a 2 doubles the y values, while adding, say, 5

would increase every y value by 5.

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Self-critique (if necessary):OK

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Self-critique rating #$&*OK

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Question: * 3.5.66 (was 3.4.60). Piecewise linear (-4, -2) to (-2, -2) to (2, 2) to (4, -2).

Describe your graphs of G(x) = f(x+2), H(x) = f(x+2) - 2 and g(x) = f(-x).

Give the four points on each of these graphs that correspond to the four points labeled on the original

graph.

YYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYYY

Your solution:

g(x) = f(x+2) All points shift to the left 2

(-6, -2), (-4, -2), (0, 2), (2,-2)

h(x) = f(x+1) - 2 All points shift to the left 1, then down 2.

(-5, -4), (-3, -4), (1, 0), (3, -4)

g(x) = f(-x) All points are reflected on the y-axis.

(4, -2), (2, -2), (-2, 2), (-4, -2)

confidence rating #$&*3

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Given Solution:

* * G(x) = f(x+2) shifts the points of the f(x) function 2 units to the left, so instead of going from (-

4, -2) to (-2, -2) to (2, 2) to (4, -2) the G(x) function goes from (-4-2, -2) to (-2-2, -2) to (2-2, 2) to

(4-2, -2), i.e., from (-6, -2) to (-4, -2) to (0, 2) to (2, -2).

H(x) = f(x+2) - 2 shifts the points of the f(x) function 1 unit to the left and 2 units down, so instead of

going from (-4, -2) to (-2, -2) to (2, 2) to (4, -2) the H(x) function goes from (-4-1, -2-2) to (-2-1, -2

-2) to (2-1, 2-2) to (4-1, -2-2), i.e., from (-5, -4) to (-3, 0) to (1, 0) to (3, -4).

g(x) = f(-x) replaces x with -x, which shifts the graph about the y axis. Instead of going from (-4, -2) to

(-2, -2) to (2, 2) to (4, -2) the g(x) function goes from (4, -2) to (2, -2) to (-2, 2) to (-4, -2)

You should carefully sketch all these graphs so you can see how the transformations affect the graphs. **

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Self-critique (if necessary):OK

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Self-critique rating #$&*OK

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Question: * 3.5.78 (was 3.4.72). Complete square and graph f(x) = x^2 + 4 x + 2.

Give the function in the designated form. Describe your graph this function.

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Your solution:

f(x) = x^2 + 4x + 2

f(x) = x^2 + 4x + 4 - 4 + 2

f(x) = (x^2 + 4x + 4) - 2

f(x) = (x+2) ^2 - 2

so y = x^2

y = (x+2)^2 means we shift 2 to the left

y = (x+2)^2 -2 means we shift 2 down

(-1, 1) (0, 0), (1, 1) becomes

(-3, -1)(-2,-2), (-1, -1)

confidence rating #$&*2

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Given Solution:

* * To complete the square on f(x) = x^2 + 4x + 2 we first look at x^2 + 4x and note that to complete the

square on this expression we must add (4/2)^2 = 4.

Going back to our original expression we write f(x) = x^2 + 4x + 2 as

f(x) = x^2 + 4x + 4 - 4 + 2 the group and simplify to get

f(x) = (x^2 + 4x + 4) - 2. Since the term in parentheses is a perfect square we write this as

f(x) = (x+2)^2 - 2.

This shifts the graph of the basic y = x^2 function 2 units to the left and 2 units down, so the basic

points (-1, 1), (0, 0) and (1, 1) of the y = x^2 graph shift to (-3, -1), (-2, -2) and (-1, -1). **

STUDENT QUESTION

I don’t understand how the function went from

f(x) = x^2 + 4x + 4 - 4 + 2 to

f(x) = (x^2 + 4x + 4) – 2.

How did you get the +4 when the previous step had a positive and a negative 4? Wouldn’t that cancel each

other out?

INSTRUCTOR RESPONSE

The object was to get a perfect square out of x^2 + 4 x. That's why you squared 4/2, giving you 4. x^2 + 4

x + 4 is a perfect square.

Of course we can't just add 4 to the original expression--that would change its value.

However we can add and subtract 4, which doesn't change the value of the expression.

This is how we got the expression x^2 + 4 x + 4 - 4 + 2.

Grouping the perfect square our expression becomes

(x^2 + 4 x + 4) - 4 + 2

To simplify this expression we need only find -4 + 2, which is -2. Our expression becomes

(x^2 + 4 x + 4) - 2, which we can write as

(x + 2)^2 - 2.

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Self-critique (if necessary):OK

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Self-critique rating #$&*OK"

&#Good responses. See my notes and let me know if you have questions. &#

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