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What is the integral of #int tan^4(x)sec^2(x)#?

1 Answer

Shwetank Mauria

Jun 19, 2016

#inttan^4xsec^2xdx=tan^5x/5+c#

Explanation:

Let #u=tanx#

#du=sec^2xdx#

Hence, #inttan^4xsec^2xdx#

= #intu^4du#

= #u^5/5+c#

= #tan^5x/5+c#

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