How do I find the derivative of $y= x arctan (2x) - (ln (1+4x^2))/4$ ?

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How do I find the derivative of $y= x arctan (2x) - (ln (1+4x^2))/4$ ?

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Answer 1 · 2015-01-28T18:35:53

You can use the Product Rule and Chain Rule to solve your problem.
1) Consider first $xarctan(2x)$ ; you have the product of $x$ and $arctan(2x)$ and the function of a function, $arctan(2x)$ which requires the chain rule (derive the $arctan$ and then multiply by the derivative of the argument $2x$ ).
You get:
$y'=1*arctan(2x)+x*1/(1+(2x)^2)*2$
2) Secondly you have the $-ln(1+4x^2)/4$ bit. Here, again, you have the chain rule to deal with the $ln$ of a function (the argument $1+4x^2$ ):
You get:
$y'=-1/4*1/(1+4x^2)*8x=-(2x)/(1+(2x)^2)$

Collecting the two parts you get:
$y'=arctan(2x)+(2x)/(1+(2x)^2)-(2x)/(1+(2x)^2)=arctan(2x)$

Hope it helps

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How do I find the derivative of $y= x arctan (2x) - (ln (1+4x^2))/4$ ?

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