How do you simplify #log_5 (17/8) log_5 (51/16)#? Precalculus Properties of Logarithmic Functions Common Logs 1 Answer Shwetank Mauria Feb 4, 2017 #log_5(17/8)log_5(51/16)=1.18862# Explanation: #log_5(17/8)log_5(51/16)# = #log_5(17/8xx51/16)# = #log_5((17xx17xx3)/(8xx8xx2))# = #2log_5(17/8)+log_5(3/2)# as #loga^nb=nloga+logb# Now as #log_5u=logu/log5#, this can be written as #(2log(17/8)+log(3/2))/log5# = #(2log(2.125)+log(1.5))/log5# = #(2xx0.32736+0.17609)/(0.69897)# = #1.18862# Answer link Related questions What is the common logarithm of 10? How do I find the common logarithm of a number? What is a common logarithm or common log? What are common mistakes students make with common log? How do I find the common logarithm of 589,000? How do I find the number whose common logarithm is 2.6025? What is the common logarithm of 54.29? What is the value of the common logarithm log 10,000? What is #log_10 10#? How do I work in #log_10# in Excel? See all questions in Common Logs Impact of this question 1534 views around the world You can reuse this answer Creative Commons License