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

Revision as of 12:36, 31 August 2021

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

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

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

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

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

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

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

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

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

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

need to know that

${1 \over cosx}=secx$

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

Revision as of 12:35, 31 August 2021 (view source) Githubhenrykoo (talk \| contribs) ← Older edit		Revision as of 12:36, 31 August 2021 (view source) Githubhenrykoo (talk \| contribs) Newer edit →
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	<math>{1 \over cos x } = sec x</math>		<math>{1 \over cos x } = sec x</math>

	<math>f(tan x)' = f({sin x \over cos x})' = {1 \over cos x } = sec x</math>		<math>f(tan x)' = f({sin x \over cos x})' = {1 \over {cos}^2 x } = {sec}^2 x</math>