Difference between revisions of "Calculus:Derivative of Trigonometric Functions"

1. ${\displaystyle f(sinx)'=cos(x)}$
2. ${\displaystyle f(cosx)'=-sin(x)}$
3. ${\displaystyle f(tanx)'=sec^{2}(x)}$
4. ${\displaystyle f(cotx)'=-csc^{2}(x)}$
5. ${\displaystyle f(cscx)'=-csc(x)cot(x)}$
6. ${\displaystyle f(secx)'=sec(x)tan(x)}$

How do we get the equation

${\displaystyle f(sinx)'=cos(x)}$ and ${\displaystyle f(cosx)'=-sin(x)}$ you only can tell by looking at the graph so we will skip it to.

tan x

So we will started with ${\displaystyle f(tanx)'=sec^{2}(x)}$

We know that ${\displaystyle tanx={sinx \over cosx}}$ If you have learn trigonometry then.

${\displaystyle f({sinx \over cosx})'}$ by using the Quotient Rule ${\displaystyle ({f \over g})'={(gf'-fg') \over g^{2}}}$

${\displaystyle f({sinx \over cosx})'={{cosx(sinx)'-sinx(cosx)'} \over {cosx}^{2}}}$

${\displaystyle f({sinx \over cosx})'={{cosxcosx-sinx(-sinx)} \over {cosx}^{2}}}$

${\displaystyle f({sinx \over cosx})'={{{cos}^{2}x+{sin}^{2}x} \over {cosx}^{2}}}$

${\displaystyle {cos}^{2}x+{sin}^{2}x=1}$

${\displaystyle f({sinx \over cosx})'={1 \over {cos}^{2}x}}$

${\displaystyle f({sinx \over cosx})'={1 \over {cos}^{2}x}={1 \over cosx}{1 \over cosx}}$

need to know that

${\displaystyle {1 \over cosx}=secx}$

${\displaystyle f(tanx)'=f({sinx \over cosx})'={1 \over {cos}^{2}x}={sec}^{2}x}$

cot x

why did ${\displaystyle f(cotx)'=-csc^{2}(x)}$

first start with

${\displaystyle cotx={cosx \over sinx}}$

so

${\displaystyle f(cotx)'=f({cosx \over sinx})'}$

by using the Quotient Rule ${\displaystyle ({f \over g})'={(gf'-fg') \over g^{2}}}$

${\displaystyle f({cosx \over sinx})'={sinx(cosx)'-cosx(sinx)' \over {sin}^{2}x}}$

${\displaystyle f(sinx)'=cos(x)}$ ${\displaystyle f(cosx)'=-sin(x)}$

${\displaystyle f({cosx \over sinx})'={-sinxsinx-cosxcosx \over {sin}^{2}x}}$

${\displaystyle f({cosx \over sinx})'={-{sin}^{2}x-{cos}^{2}x \over {sin}^{2}x}}$ but ${\displaystyle -{sin}^{2}x-{cos}^{2}x=-1}$ so ${\displaystyle f({cosx \over sinx})'={-1 \over {sin}^{2}x}}$

${\displaystyle f({cosx \over sinx})'={-1 \over sinx}{1 \over sinx}}$

${\displaystyle {1 \over sinx}={csc}x}$

${\displaystyle f(cotx)'=f({cosx \over sinx})'=-{csc}^{2}x}$

csc x

why did ${\displaystyle f(cscx)'=-csc(x)cot}$

In trigonometry ${\displaystyle cscx={1 \over sinx}}$

so

${\displaystyle f(cscx)'=f({1/oversinx})'}$

by using the Quotient Rule ${\displaystyle ({f \over g})'={(gf'-fg') \over g^{2}}}$

g = sin x

f = 1

${\displaystyle f({1 \over sinx})'={{sinx(1)'-1(sinx)'} \over {sin}^{2}x}}$

need to know (1)'= 0

and (sin x)' = cos x

so

${\displaystyle f({1 \over sinx})'={{(0sinx)-cosx} \over {sin}^{2}x}}$

next

${\displaystyle f({1 \over sinx})'={-cosx \over {sin}^{2}x}}$

${\displaystyle {-cosx \over {sin}^{2}x}=-{cosx \over sinx}{1 \over sinx}}$

In trigonometry

${\displaystyle {cosx \over sinx}=cotx}$ ${\displaystyle {1 \over sinx}=cscx}$

so ${\displaystyle f({1 \over sinx})'=-cotxcscx}$