4.2 day 1
graph quadratic functions in vertex form ia
graph the function. label the vertex and the axis of symmetry. use your calculator to find 5 points on the parabola including the vertex. state the maximum or minimum value of the graph and compare the width of the graph to the width of $y = x^2$
1. $y = \frac{1}{2}(x - 3)^2 - 4$
- x y table (vertex indicated)
- 1. v : ( , )
- 2. aos: $x = $ ______
- 3. maximum or minimum?
- 4. value: _______________
- (graph grid)
2. $y = -(x - 1)^2 + 5$
- x y table (vertex indicated)
- 1. v : ( , )
- 2. aos: $x = $ ______
- 3. maximum or minimum?
- 4. value: _______________
- (graph grid)

Question

4.2 day 1
graph quadratic functions in vertex form ia
graph the function. label the vertex and the axis of symmetry. use your calculator to find 5 points on the parabola including the vertex. state the maximum or minimum value of the graph and compare the width of the graph to the width of $y = x^2$
1. $y = \frac{1}{2}(x - 3)^2 - 4$
   - x y table (vertex indicated)
   - 1. v : ( , )
   - 2. aos: $x = $ ______
   - 3. maximum or minimum?
   - 4. value: _______________
   - (graph grid)
2. $y = -(x - 1)^2 + 5$
   - x y table (vertex indicated)
   - 1. v : ( , )
   - 2. aos: $x = $ ______
   - 3. maximum or minimum?
   - 4. value: _______________
   - (graph grid)

Accepted Answer

# Explanation:
---
### For Function 1: $y=\frac{1}{2}(x-3)^2 - 4$
## Step1: Identify vertex form
Vertex form: $y=a(x-h)^2+k$, vertex $(h,k)$
Here $h=3$, $k=-4$, $a=\frac{1}{2}$
## Step2: Find vertex (V)
Vertex is $(h,k)$
$V=(3, -4)$
## Step3: Find axis of symmetry (AOS)
AOS is $x=h$
$x=3$
## Step4: Determine max/min
$a=\frac{1}{2}>0$, so parabola opens up: Minimum
## Step5: Find min value
Minimum value is $k=-4$
## Step6: Calculate 5 points
- Vertex: $x=3$, $y=\frac{1}{2}(3-3)^2-4=-4$
- $x=1$: $y=\frac{1}{2}(1-3)^2-4=\frac{1}{2}(4)-4=2-4=-2$
- $x=2$: $y=\frac{1}{2}(2-3)^2-4=\frac{1}{2}(1)-4=-3.5$
- $x=4$: $y=\frac{1}{2}(4-3)^2-4=\frac{1}{2}(1)-4=-3.5$
- $x=5$: $y=\frac{1}{2}(5-3)^2-4=\frac{1}{2}(4)-4=-2$
## Step7: Compare width to $y=x^2$
$|a|=\frac{1}{2}<1$, so parabola is wider than $y=x^2$

---
### For Function 2: $y=-(x-1)^2 + 5$
## Step1: Identify vertex form
Vertex form: $y=a(x-h)^2+k$, vertex $(h,k)$
Here $h=1$, $k=5$, $a=-1$
## Step2: Find vertex (V)
Vertex is $(h,k)$
$V=(1, 5)$
## Step3: Find axis of symmetry (AOS)
AOS is $x=h$
$x=1$
## Step4: Determine max/min
$a=-1<0$, so parabola opens down: Maximum
## Step5: Find max value
Maximum value is $k=5$
## Step6: Calculate 5 points
- Vertex: $x=1$, $y=-(1-1)^2+5=5$
- $x=-1$: $y=-(-1-1)^2+5=-(4)+5=1$
- $x=0$: $y=-(0-1)^2+5=-(1)+5=4$
- $x=2$: $y=-(2-1)^2+5=-(1)+5=4$
- $x=3$: $y=-(3-1)^2+5=-(4)+5=1$
## Step7: Compare width to $y=x^2$
$|a|=1$, so parabola has same width as $y=x^2$

# Answer:
---
### Function 1: $y=\frac{1}{2}(x-3)^2 - 4$
1. V: $(3, -4)$
2. AOS: $x=3$
3. Maximum or Minimum? Minimum
4. Value: $-4$
5. Table of 5 points:
| X | Y |
|---|---|
| 1 | -2 |
| 2 | -3.5 |
| 3 | -4 |
| 4 | -3.5 |
| 5 | -2 |
6. Width comparison: Wider than $y=x^2$

---
### Function 2: $y=-(x-1)^2 + 5$
1. V: $(1, 5)$
2. AOS: $x=1$
3. Maximum or Minimum? Maximum
4. Value: $5$
5. Table of 5 points:
| X | Y |
|---|---|
| -1 | 1 |
| 0 | 4 |
| 1 | 5 |
| 2 | 4 |
| 3 | 1 |
6. Width comparison: Same width as $y=x^2$

*(Graphing note: Plot the table points, draw a smooth parabola through them, label the vertex and axis of symmetry on the grid for each function)*

Sovi.AI - AI Math Tutor

QUESTION IMAGE

Question

Explanation:

For Function 1: $y=\frac{1}{2}(x-3)^2 - 4$

Step1: Identify vertex form

Step2: Find vertex (V)

Step3: Find axis of symmetry (AOS)

Step4: Determine max/min

Step5: Find min value

Step6: Calculate 5 points

Step7: Compare width to $y=x^2$

For Function 2: $y=-(x-1)^2 + 5$

Step1: Identify vertex form

Step2: Find vertex (V)

Step3: Find axis of symmetry (AOS)

Step4: Determine max/min

Step5: Find max value

Step6: Calculate 5 points

Step7: Compare width to $y=x^2$

Answer:

Function 1: $y=\frac{1}{2}(x-3)^2 - 4$

Function 2: $y=-(x-1)^2 + 5$