4.07 Quadratic functions (Extended)
Key features
Previously, key features of linear equations have been explored including the gradient, the $x$x-intercept, and the $y$y-intercept. The graph of a quadratic equation is a parabola and is a curved or concave shape (either concave up or down, depending on the equation). The following sections describe the key features of a parabola.
Intercepts
The $x$x-intercepts are where the parabola crosses the $x$x-axis. This occurs when $y=0$y=0.
The $y$y-intercept is where the parabola crosses the $y$y-axis. This occurs when $x=0$x=0.
These intercepts are shown in the picture below:
There may be one or two or even no $x$x-intercepts:
Maximum and minimum values
Maximum or minimum values are also known as the turning points, and they are found at the vertex of the parabola.
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Parabolas that are concave up have a minimum value. This means the $y$y-value will never go under a certain value. |
Parabolas that are concave down have a maximum value. This means the $y$y-value will never go over a certain value. |
Axis of symmetry
Maximum and minimum values occur on a parabola's axis of symmetry. This is the vertical line that evenly divides a parabola into two sides down the middle. Using the general form of the quadratic $y=ax^2+bx+c$y=ax2+bx+c, substitute the relevant values of $a$a and $b$b into the following equation:
$x=\frac{-b}{2a}$x=−b2a
Does it look familiar? This is part of the quadratic formula. It is the half-way point between the two solutions.
The gradient of a curve
Positive and negative gradients were previously explored for straight lines. If we draw the tangent line to a curve at a particular point then we can approximate the gradient to the curve. A parabola has a positive gradient in some places and negative gradient in others. The parabola's maximum or minimum value, at which the gradient is $0$0, is the division between the positive and negative gradient regions. Hence, why it is also called the turning point.
Look at the picture below. One side of the parabola has a positive gradient, there is a turning point with a zero gradient, and the other side of the parabola has a negative gradient.
In this particular graph, the gradient is positive when $x<1$x<1 and the parabola is increasing for these values of $x$x. Similarly, the gradient is negative when $x>1$x>1, and for these values of $x$x, the parabola is decreasing.
Practice questions
Question 1
Examine the given graph and answer the following questions.
What are the $x$x values of the $x$x-intercepts of the graph? Write both answers on the same line separated by a comma.
What is the $y$y value of the $y$y-intercept of the graph?
What is the minimum value of the graph?
Question 2
Examine the attached graph and answer the following questions.
What is the $x$x-value of the $x$x-intercept of the graph?
What is the $y$y value of the $y$y-intercept of the graph?
What is the absolute maximum of the graph?
Determine the interval of $x$x in which the graph is increasing.
Give your answer as an inequality.
Graphing quadratics
As for linear equations, there are a number of forms for graphing quadratic functions:
General Form: $y=ax^2+bx+c$y=ax2+bx+c
Factored or $x$x-intercept form: $y=a\left(x-\alpha\right)\left(x-\beta\right)$y=a(x−α)(x−β)
Turning point form: $y=a\left(x-h\right)^2+k$y=a(x−h)2+k
Each form has an advantage for different key features that can be identified quickly. However, for each form, the role of $a$a remains the same.
That is:
- If $a<0$a<0 then the quadratic is concave down
- If $a>0$a>0 then the quadratic is concave up
- The larger the magnitude of $a$a, the narrower the curve
The following are examples of how to find all the key features for each form.
Graphing from turning point form
$y=a\left(x-h\right)^2+k$y=a(x−h)2+k
- This form is given this name as the turning point can be read directly from the equation: $(h,k)$(h,k)
- The axis of symmetry will be at $x=h$x=h
- The $y$y-intercept can be found by substituting $x=0$x=0 into the equation
- The $x$x-intercept can be found by substituting $y=0$y=0 into the equation and rearranging
Practice questions
Question 3
Consider the equation $y=-\left(x+2\right)^2+4$y=−(x+2)2+4.
Find the $x$x-intercepts. Write all solutions on the same line, separated by a comma.
Find the $y$y-intercept.
Determine the coordinates of the vertex.
Vertex $=$=$\left(\editable{},\editable{}\right)$(,)
Graph the equation.
Loading Graph...
Question 4
Consider the equation $y=\left(x-3\right)^2+4$y=(x−3)2+4.
Does the graph have any $x$x-intercepts?
No
AYes
BFind the $y$y-intercept.
Determine the coordinates of the vertex.
Vertex $=$=$\left(\editable{},\editable{}\right)$(,)
Graph the equation.
Loading Graph...
Graphing from factored form
$y=a\left(x-\alpha\right)\left(x-\beta\right)$y=a(x−α)(x−β)
- From this form, read the $x$x-intercepts directly: $(\alpha,0)$(α,0) and $(\beta,0)$(β,0). If $y=0$y=0, solve the equation using the null factor law.
- The axis of symmetry will be at the $x$x-coordinate midway between the two $x$x-intercepts. Alternatively, expand this equation to general form and then use the formula for the axis of symmetry: $x=\frac{-b}{2a}$x=−b2a.
- The axis of symmetry is also the $x$x-coordinate of the turning point. Substitute this value into the equation then find the $y$y-coordinate of the turning point.
- The $y$y-intercept can be found by substituting $x=0$x=0 into the equation
Practice question
Question 5
Consider the parabola $y=\left(x+1\right)\left(x-3\right)$y=(x+1)(x−3).
Find the $y$y value of the $y$y-intercept.
Find the $x$x values of the $x$x-intercepts.
Write all solutions on the same line separated by a comma.
State the equation of the axis of symmetry.
Find the coordinates of the vertex.
Vertex $=$=$\left(\editable{},\editable{}\right)$(,)
Graph the parabola.
Loading Graph...
Graphing from general form
$y=ax^2+bx+c$y=ax2+bx+c
- From this form, read the $y$y-intercept directly: $(0,c)$(0,c)
- Find the axis of symmetry using the formula: $x=\frac{-b}{2a}$x=−b2a
- The axis of symmetry is also the $x$x-coordinate of the turning point. Substitute this value into the equation, then find the $y$y-coordinate of the turning point.
- The $x$x-intercepts can be found by substituting $y=0$y=0 into the equation and then using one of the methods for solving quadratics, such as factorising or the quadratic formula, to find the zeros ($x$x - intercepts) of the equation.
Alternatively, use the method of completing the square to rewrite the quadratic in turning point form.
Sometimes, the solutions for a quadratic may be asked for. This is referring to the $x$x-intercepts which satisfy the equation $y=0$y=0. The solutions are sometimes called the roots of the equation.
Practice questions
Question 6
Consider the quadratic function $y=x^2+2x-8$y=x2+2x−8.
Determine the $x$x-value(s) of the $x$x-intercept(s) of this parabola. Write all answers on the same line separated by commas.
Determine the $y$y-value of the $y$y-intercept for this parabola.
Determine the equation of the vertical axis of symmetry for this parabola.
Find the $y$y-coordinate of the vertex of the parabola.
Draw a graph of the parabola $y=x^2+2x-8$y=x2+2x−8.
Loading Graph...
question 7
A parabola has the equation $y=x^2+4x-1$y=x2+4x−1.
Express the equation of the parabola in the form $y=\left(x-h\right)^2+k$y=(x−h)2+k by completing the square.
Find the $y$y-intercept of the curve.
Find the vertex of the parabola.
Vertex $=$= $\left(\editable{},\editable{}\right)$(,)
Is the parabola concave up or down?
Concave up
AConcave down
BHence plot the curve $y=x^2+4x-1$y=x2+4x−1
Loading Graph...
Question 8
Consider the graph of the function $f\left(x\right)=-x^2-x+6$f(x)=−x2−x+6.
Using the graph, write down the solutions to the equation $-x^2-x+6=0$−x2−x+6=0.
If there is more than one solution, write the solutions separated by commas.
Graphing quadratics using technology
Technology can be used to graph and find key features of a quadratic function. We may need to use our knowledge of the graph or calculate the location of some key features to find an appropriate view window.
Practice question
Question 9
Use your calculator or other handheld technology to graph $y=4x^2-64x+263$y=4x2−64x+263.
Then answer the following questions.
What is the vertex of the graph?
Give your answer in coordinate form.
The vertex is $\left(\editable{},\editable{}\right)$(,)
What is the $y$y-intercept?
Give your answer in coordinate form.
The $y$y-intercept is $\left(\editable{},\editable{}\right)$(,)