How do you find the integral of #log_8 (2x+1) dx#?

1 Answer
bp
Apr 15, 2015

#1/ln8# [ x ln(2x+1) -x + #1/2# ln(2x+1)] +C

To start with, change this to natural log. It would be #1/ln8# ln(2x+1)

Now integrate it by parts assuming 1 as the other function multiplied to ln(2x+1).

The integral would be #1/ln8#[ln(2x+1) x - #int# #2/(2x+1)#xdx]

= #1/ln8# [x ln(2x+1) - #int##(2x+1-1)/(2x+1)# dx

= #1/ln8# [ x ln(2x+1) -#int# dx +#int# #1/(2x+1)# dx

=#1/ln8# [ x ln(2x+1) -x + #1/2# ln(2x+1)] +C

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