How do you solve #1.2e^(-5x)+2.6=3#? Precalculus Properties of Logarithmic Functions Natural Logs 1 Answer Ratnaker Mehta Jul 20, 2016 #x=0.2ln3~=0.2197# Explanation: #1.2e^(-5x)+2.6=3# #:. 1.2e^(-5x)=3-2.6=0.4# #:. e^(-5x)=0.4/1.2=1/3# #;. ln(e^(-5x))=ln(1/3)# #:. -5xlne=ln(1/3)# #:. -5x=ln(1/3)# #:. x=-1/5ln(1/3)=-0.2(ln1-ln3)=-0.2(0-ln3)# #:. x=0.2ln3# Now, #0.2ln3=0.2(log_(10)3/log_(10)e)=0.2(0.4771/0.4343)~=0.2197# #:. x~=0.2197# 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 1604 views around the world You can reuse this answer Creative Commons License