How do you solve #3-log 7x + 4 = 5#?

1 Answer
Dec 2, 2015

Use the exponential function and a property of logarithms to find that
#x = e^2/7#

Explanation:

We will be using the property that

#e^log(a) = a#


#3-log(7x) + 4 = 5#

#=> -log(7x) = 5 - 3 - 4 = -2#

#=> log(7x) = 2#

#=> e^log(7x) = e^2#

#=> 7x = e^2##" "# (by the above property)

#=> x = e^2/7#