How do you solve #2log_3y-log_3(y+4)=2#? Precalculus Solving Exponential and Logarithmic Equations Logarithmic Models 1 Answer mason m Nov 24, 2015 #y=12# Explanation: Recall that: #{(bloga=loga^b),(loga-logb=log(a/b)):}# #2log_3y-log_3(y+4)=2# #log_3(y^2)-log_3(y+4)=2# #log_3(y^2/(y+4))=2# #y^2/(y+4)=3^2=9# #y^2=9(y+4)=9y+36# #y^2-9y-36=0# #(y-12)(y+3)=0# #y=12# or #color(red)cancel(y=-3# (In #loga#, #a>0#.) Answer link Related questions What is a logarithmic model? How do I use a logarithmic model to solve applications? What is the advantage of a logarithmic model? How does the Richter scale measure magnitude? What is the range of the Richter scale? How do you solve #9^(x-4)=81#? How do you solve #logx+log(x+15)=2#? How do you solve the equation #2 log4(x + 7)-log4(16) = 2#? How do you solve #2 log x^4 = 16#? How do you solve #2+log_3(2x+5)-log_3x=4#? See all questions in Logarithmic Models Impact of this question 1909 views around the world You can reuse this answer Creative Commons License