How do you find the second derivative of #ln((x+1)/(x-1))# ?

1 Answer
Steve M
Nov 20, 2016

# (d^2y)/dx^2 = ( 4x ) / ( x^2-1)^2 #

Explanation:

Let # y = ln((x+1)/(x-1)) #,
Then:

# y = ln(x+1) - ln(x-1) #

Differentiating wrt #x# we get:

# dy/dx = 1/(x+1) - 1/(x-1) #

Differentiating again wrt #x# we get:

# (d^2y)/dx^2 = -1/(x+1)^2 - (-1)/(x-1)^2 #
# :. (d^2y)/dx^2 = ( (x+1)^2 - (x-1)^2 ) / ( (x+1)^2(x-1)^2 )#
# :. (d^2y)/dx^2 = ( (x^2+2x+1) - (x^2-2x+1) ) / ( ((x+1)(x-1))^2 )#
# :. (d^2y)/dx^2 = ( 4x ) / ( x^2-1)^2 #

Related questions
See all questions in Differentiating Logarithmic Functions with Base e
Impact of this question
2049 views around the world
You can reuse this answer
Creative Commons License