How do you find the first and second derivative of #(lnx)^lnx#?

1 Answer
Noah G
Nov 11, 2016

#y= (lnx)^lnx#

#lny = ln(lnx^(lnx))#

#lny = lnx(ln(lnx))#

Let #y= lnu# and #u = lnx#.

#dy/dx= 1/u xx 1/x = 1/lnx xx 1/x= 1/(xlnx)#

#1/y(dy/dx) = 1/x xx ln(lnx) + lnx/(xlnx)#

#1/y(dy/dx) = (ln(lnx))/x + 1/x#

#dy/dx= y xx (ln(lnx) + 1)/x#

#dy/dx= ((lnx)^(lnx)(ln(lnx) + 1))/x#

The second derivative can be found using the product rule to differentiate the upper term and the quotient rule to differentiate the entire expression.

You can do the algebra.

Hopefully this helps!

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