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ACTIVITY 1

FINDING STATIONARY POINTS

Finding Maxima and Minima using Derivatives

Where is a function at a high or low point? Calculus can help!

A maximum is a high point and a minimum is a low point:

function local minimum and maximum

In a smoothly changing function a maximum or minimum is always where the function flattens out  (except for a saddle point).

Where does it flatten out?  Where the slope is zero.

Where is the slope zero?  The Derivative tells us!

Let's dive right in with an example:

quadratic graph

Example: A ball is thrown in the air. Its height at any time t is given by:

h = 3 + 14t − 5t2

What is its maximum height?

 

Using derivatives we can find the slope of that function:

d/dth = 0 + 14 − 5(2t)
= 14 − 10t

(See below this example for how we found that derivative.)

 

quadratic graph

Now find when the slope is zero:

14 − 10t = 0
10t = 14
t = 14 / 10 = 1.4

The slope is zero at t = 1.4 seconds

And the height at that time is:

h = 3 + 14×1.4 − 5×1.42
h = 3 + 19.6 − 9.8 = 12.8

And so:

The maximum height is 12.8 m (at t = 1.4 s)

 

A Quick Refresher on Derivatives

A derivative basically finds the slope of a function.

In the previous example we took this:

h = 3 + 14t − 5t2

and came up with this derivative:

d/dth = 0 + 14 − 5(2t)
= 14 − 10t

Which tells us the slope of the function at any time t

slope examples: y=3, slope=0; y=2x, slope=2

 

We used these Derivative Rules:

  • The slope of a constant value (like 3) is 0
  • The slope of a line like 2x is 2, so 14t has a slope of 14
  • A square function like t2 has a slope of 2t, so 5t2 has a slope of 5(2t)
  • And then we added them up: 0 + 14 − 5(2t)

 

How Do We Know it is a Maximum (or Minimum)?

We saw it on the graph! But otherwise ... derivatives come to the rescue again.

Take the derivative of the slope (the second derivative of the original function):

The Derivative of 14 − 10t is −10

This means the slope is continually getting smaller (−10): traveling from left to right the slope starts out positive (the function rises), goes through zero (the flat point), and then the slope becomes negative (the function falls):

slope positive then zero then negative
A slope that gets smaller (and goes though 0) means a maximum.

This is called the Second Derivative Test

On the graph above I showed the slope before and after, but in practice we do the test at the point where the slope is zero:

Second Derivative Test

When a function's slope is zero at x, and the second derivative at x is:

  • less than 0, it is a local maximum
  • greater than 0, it is a local minimum
  • equal to 0, then the test fails (there may be other ways of finding out though)

 

"Second Derivative: less than 0 is a maximum, greater than 0 is a minimum"

 

Example: Find the maxima and minima for:

y = 5x3 + 2x2 − 3x

The derivative (slope) is:

d/dxy = 15x2 + 4x − 3

Which is quadratic with zeros at:

  • x = −3/5
  • x = +1/3

 

Could they be maxima or minima? (Don't look at the graph yet!)

 

The second derivative is y'' = 30x + 4

At x = −3/5:

y'' = 30(−3/5) + 4 = −14
it is less than 0, so −3/5 is a local maximum

At x = +1/3:

y'' = 30(+1/3) + 4 = +14
it is greater than 0, so +1/3 is a local minimum

(Now you can look at the graph.)

5x^3 2x^2 3x

Words

A high point is called a maximum (plural maxima).

A low point is called a minimum (plural minima).

The general word for maximum or minimum is extremum (plural extrema).

We say local maximum (or minimum) when there may be higher (or lower) points elsewhere but not nearby.

One More Example

Example: Find the maxima and minima for:

y = x3 − 6x2 + 12x − 5

The derivative is:

d/dxy = 3x2 − 12x + 12

Which is quadratic with only one zero at x = 2

Is it a maximum or minimum?

 

The second derivative is y'' = 6x − 12

At x = 2:

y'' = 6(2) − 12 = 0
it is 0, so the test fails

And here is why:

x^3 6x^2 12x 5

It is a saddle point ... the slope does become zero, but it is neither a maximum or minimum.

 

What is the maximum or minimum point for the curve y = x2 − 4 ?