How do you solve #\log _ { 10} ( x - \pi ) = 5#?

1 Answer
Mar 31, 2017

#x=100000+pi#

Explanation:

Okay, so we know that the base of a log is also the base of an exponent.

#a=x^b# is #log_xa=b#

Knowing this, let's write #log_10(x-pi)=5# in exponential form.

#10^5=x-pi#

Simplify

#100000=x-pi#

Solve for #x#

#100000+pi=x#

#rArrx=100000+pi#