How do you solve #ln(-3+3n)=ln(n^2-n)#? Precalculus Properties of Logarithmic Functions Natural Logs 1 Answer Cesareo R. Aug 10, 2016 #n = 3# Explanation: #log_e(-3+3n)-log_e(n^2-n) = log(n-1)+log_e 3-log_e(n-1)-log_e n = 0# or #log_e 3-log_e n = log_e 1 # Finally #log_e(3/n) = log_e 1# or #n/3 = 1->n = 3# which is a feasible solution Answer link Related questions What is the natural log of e? What is the natural log of 2? How do I do natural logs on a TI-83? How do I find the natural log of a fraction? What is the natural log of 1? What is the natural log of infinity? Can I find the natural log of a negative number? How do I find a natural log without a calculator? How do I find the natural log of a given number by using a calculator? How do I do natural logs on a TI-84? See all questions in Natural Logs Impact of this question 1930 views around the world You can reuse this answer Creative Commons License