Increasing and decreasing

Differentiation: Applications of derivatives

Increasing and decreasing

A function#f# is #\blue{\text{increasing}}# in #x# if #f(x)# increases as #x# increases.

A function #f# is #\green{\text{decreasing}}\ (dashed)# in #x# if #f(x)# decreases as #x# increases.

In the example, we see that a function can also both increase and decrease. We say that the function increases on the interval #\ivoo{-\infty}{6}# and decreases on the interval #\ivoo{6}{\infty}#.

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We can check whether a function increases or decreases in a point #x# by looking at the derivative in that point.

A function #f# #\blue{\text{increases}}# in a point #x# if #f'(x)\gt 0#.

A function #f# #\green{\text{decreases}}# in a point #x# if #f'(x)\lt 0#.

A function #f# can transition from #\blue{\text{increasing}}# to #\green{\text{decreasing}}# (and the other way around) in a point #p# if #f'(p)=0#.

Example

\begin{array}{rcll}f(x)&=&x^3-8x& \text{with } f'(x)=3x^2-8\\
f'(2)&=&4&\text{therefore }f\blue{\text{ increases }}\text{in }x=2\\f'(1)&=&-5&\text{therefore }f\green{\text{ decreases }}\text{in }x=1\end{array}

Determine the interval at which the function increases / decreases

	Step-by-step	Example
	We want to determine the interval or intervals at which the function #f# #\blue{\text{increases}}#.	#f(x)=\left(x-4\right)^2+6#
Step 1	Determine the derivative of #f#.	#f'(x)=2\left(x-4\right)#
Step 2	Determine the zeros of the derivative.	#x=4#
Step 3	For points to the left and right of the zeros, determine whether #f'# is positive or negative.	#f'(0)=-8# and #f'(6)=4#
Step 4	Now determine the interval / intervals on which #f# increases. The function #f# increases if #f'(x) \gt 0#.	#f# #\blue{\text{increases}}# on #\ivoo{4}{\infty}#

This works the same way for intervals on which #f# #\green{\text{decreases}}#, only then #f'(x)\lt0# applies.

The function #f(x)=-9x^2-8x+1# is increasing on the interval #\ivoo{-\infty}{a}# and decreasing on the interval #\ivoo{a}{\infty}#. What is the value of #a#? Simplify your answer as much as possible.

#a=# #-{{4}\over{9}}#

Step 1	We determine the derivative of #f# using the power rule. This gives: \[f'(x)=-18x-8\]
Step 2	We solve the equation \[-18x-8=0\] This goes as follows: \[\begin{array}{rcl}-18x-8&=&0 \\ &&\phantom{xxx}\blue{\text{the equation we need to solve}} \\ -18x&=&8 \\ &&\phantom{xxx}\blue{\text{both sides minus }-8} \\ x&=&\displaystyle -{{4}\over{9}} \\ &&\phantom{xxx}\blue{\text{both sides divided by }-18} \\\end{array}\]
Step 3	#f'(-2)=28# # f'(2)=-44#
Step 4	Therefore, the function #f# is increasing on the interval #\ivoo{-\infty}{-{{4}\over{9}}}# and decreasing on the interval #\ivoo{-{{4}\over{9}}}{\infty}#. Hence, #a=-{{4}\over{9}}#.

The graph of #f# is drawn below.

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