Difference between revisions of "Chain Rule"

Introduction

It is relatively easy to calculate the derivatives of simple functions, like polynomials or trigonometric functions.

But, what about more complicated functions?

For example,  ${\displaystyle f(x)=\sin(3x)}$  or  ${\displaystyle g(x)=(x+1)^{8}?}$

Well, the key to calculating the derivatives of these functions is to recognize that these functions are compositions.

For  ${\displaystyle f(x)=\sin(3x),}$  it is the composition of the function  ${\displaystyle y=3x}$  with  ${\displaystyle y=\sin(x).}$

Similarly, for  ${\displaystyle g(x)=(x+1)^{8},}$  it is the composition of  ${\displaystyle y=x+1}$  and  ${\displaystyle y=x^{8}.}$

So, how do we take the derivative of compositions?

The answer to this question is exactly the Chain Rule.

Chain Rule

Let  ${\displaystyle y=f(u)}$  be a differentiable function of  ${\displaystyle u}$  and let  ${\displaystyle u=g(x)}$  be a differentiable function of  ${\displaystyle x.}$ 

Then,  ${\displaystyle y=f(g(x))}$  is a differentiable function of  ${\displaystyle x}$  and

${\displaystyle y'=f'(g(x))\cdot g'(x).}$

Warm-Up

Calculate  ${\displaystyle h'(x).}$

1)   ${\displaystyle h(x)=\sin(3x)}$

Solution:
Let  ${\displaystyle f(x)=\sin(x)}$  and  ${\displaystyle g(x)=3x.}$
Then,  ${\displaystyle f'(x)=\cos(x)}$  and  ${\displaystyle g'(x)=3.}$
Now,  ${\displaystyle h(x)=f(g(x)).}$
Using the Chain Rule, we have
${\displaystyle {\begin{array}{rcl}\displaystyle {h'(x)}&=&\displaystyle {f'(g(x))\cdot g'(x)}\\&&\\&=&\displaystyle {\cos(3x)\cdot 3}\\&&\\&=&\displaystyle {3\cos(3x).}\end{array}}}$

Final Answer:
${\displaystyle h'(x)=3\cos(3x)}$

2)   ${\displaystyle h(x)=(x+1)^{8}}$

Solution:
Let  ${\displaystyle f(x)=x^{8}}$  and  ${\displaystyle g(x)=x+1.}$
Then,  ${\displaystyle f'(x)=8x^{7}}$  and  ${\displaystyle g'(x)=1.}$
Now,  ${\displaystyle h(x)=f(g(x)).}$
Using the Chain Rule, we have
${\displaystyle {\begin{array}{rcl}\displaystyle {h'(x)}&=&\displaystyle {f'(g(x))\cdot g'(x)}\\&&\\&=&\displaystyle {8(x+1)^{7}\cdot 1}\\&&\\&=&\displaystyle {8(x+1)^{7}.}\end{array}}}$

Final Answer:
${\displaystyle h'(x)=8(x+1)^{7}.}$

3)   ${\displaystyle h(x)=\ln(x^{2})}$

Solution:
Let  ${\displaystyle f(x)=\ln(x)}$  and  ${\displaystyle g(x)=x^{2}.}$
Then,  ${\displaystyle f'(x)={\frac {1}{x}}}$  and  ${\displaystyle g'(x)=2x.}$
Now,  ${\displaystyle h(x)=f(g(x)).}$
Using the Chain Rule, we have
${\displaystyle {\begin{array}{rcl}\displaystyle {h'(x)}&=&\displaystyle {f'(g(x))\cdot g'(x)}\\&&\\&=&\displaystyle {{\frac {1}{x^{2}}}\cdot 2x}\\&&\\&=&\displaystyle {{\frac {2}{x}}.}\end{array}}}$

Final Answer:
${\displaystyle h'(x)={\frac {2}{x}}}$

Exercise 1

Calculate the derivative of  ${\displaystyle h(x)=(\sin x+\cos x)^{4}.}$

Using the Chain Rule, we have

${\displaystyle {\begin{array}{rcl}\displaystyle {h'(x)}&=&\displaystyle {4(\sin x+\cos x)^{3}(\sin x+\cos x)'}\\&&\\&=&\displaystyle {4(\sin x+\cos x)^{3}((\sin x)'+(\cos x)')}\\&&\\&=&\displaystyle {4(\sin x+\cos x)^{3}(\cos x-\sin x)}.\end{array}}}$

So, we have

${\displaystyle h'(x)=4(\sin x+\cos x)^{3}(\cos x-\sin x).}$

Exercise 2

Calculate the derivative of  ${\displaystyle h(x)=\sin ^{3}(2x^{2}+x+1).}$

First, notice  ${\displaystyle h(x)=(\sin(2x^{2}+x+1))^{3}.}$

Using the Chain Rule, we have

${\displaystyle h'(x)=3(\sin(2x^{2}+x+1))^{2}\cdot (\sin(2x^{2}+x+1))'.}$

Now, we need to use the Chain Rule a second time. So, we get

${\displaystyle {\begin{array}{rcl}\displaystyle {h'(x)}&=&\displaystyle {3(\sin(2x^{2}+x+1))^{2}\cos(2x^{2}+x+1)\cdot (2x^{2}+x+1)'}\\&&\\&=&\displaystyle {3\sin ^{2}(2x^{2}+x+1)\cos(2x^{2}+x+1)(4x+1).}\end{array}}}$

So, we have

${\displaystyle h'(x)=3\sin ^{2}(2x^{2}+x+1)\cos(2x^{2}+x+1)(4x+1).}$

Exercise 3

Calculate the derivative of  ${\displaystyle h(x)={\frac {x^{2}\sin x+1}{x^{2}\cos x+3}}.}$

Using the Quotient Rule, we have

${\displaystyle h'(x)={\frac {(x^{2}\cos x+3)(x^{2}\sin x+1)'-(x^{2}\sin x+1)(x^{2}\cos x+3)'}{(x^{2}\cos x+3)^{2}}}.}$

Now, we need to use the Product Rule. So, we have

${\displaystyle {\begin{array}{rcl}\displaystyle {h'(x)}&=&\displaystyle {\frac {(x^{2}\cos x+3)(x^{2}(\sin x)'+(x^{2})'\sin x)-(x^{2}\sin x+1)(x^{2}(\cos x)'+(x^{2})'\cos x)}{(x^{2}\cos x+3)^{2}}}\\&&\\&=&\displaystyle {{\frac {(x^{2}\cos x+3)(x^{2}\cos x+2x\sin x)-(x^{2}\sin x+1)(-x^{2}\sin x+2x\cos x)}{(x^{2}\cos x+3)^{2}}}.}\end{array}}}$

So, we get

${\displaystyle h'(x)={\frac {(x^{2}\cos x+3)(x^{2}\cos x+2x\sin x)-(x^{2}\sin x+1)(-x^{2}\sin x+2x\cos x)}{(x^{2}\cos x+3)^{2}}}.}$

Exercise 4

Calculate the derivative of  ${\displaystyle f(x)={\frac {e^{x}}{x^{2}\sin x}}.}$

First, using the Quotient Rule, we have

${\displaystyle {\begin{array}{rcl}\displaystyle {f'(x)}&=&\displaystyle {\frac {x^{2}\sin x(e^{x})'-e^{x}(x^{2}\sin x)'}{(x^{2}\sin x)^{2}}}\\&&\\&=&\displaystyle {{\frac {x^{2}\sin xe^{x}-e^{x}(x^{2}\sin x)'}{x^{4}\sin ^{2}x}}.}\end{array}}}$

Now, we need to use the Product Rule. So, we have

${\displaystyle {\begin{array}{rcl}\displaystyle {f'(x)}&=&\displaystyle {\frac {x^{2}\sin xe^{x}-e^{x}(x^{2}(\sin x)'+(x^{2})'\sin x)}{x^{4}\sin ^{2}x}}\\&&\\&=&\displaystyle {{\frac {x^{2}\sin xe^{x}-e^{x}(x^{2}\cos x+2x\sin x)}{x^{4}\sin ^{2}x}}.}\end{array}}}$

So, we have

${\displaystyle f'(x)={\frac {x^{2}\sin xe^{x}-e^{x}(x^{2}\cos x+2x\sin x)}{x^{4}\sin ^{2}x}}.}$