How do you solve #-10e^(2-2b)-6=-66#? Precalculus Properties of Logarithmic Functions Natural Logs 1 Answer Shwetank Mauria Aug 31, 2016 #b=0.104# Explanation: #-10e^(2-2b)-6=-66# #hArr-10e^(2-2b)=-66+6# or #e^(2-2b)=(-60)/(-10)=6# or #2-2b=ln6# or #2b=2-ln6# or #b=1-ln6/2=1-1.792/2# = #1-0.896=0.104# 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 1890 views around the world You can reuse this answer Creative Commons License