f(x) = ln(xe^x). Find all a > 0 such that two functions f′(x) and 1 − f′′(x) with [2] domain (a, ∞) have the same range.
ln(xe^x) = lnx + le^x lne=1; therefore ln(xe^x) = lnx+1 f'=1/x +1 f" = -1/(x^2) but i do not know the next step to this question.