How do you solve #log_x 9 = -2#?

1 Answer
Noah G
Mar 7, 2016

You must change to exponential form: #log_an = x -> a^x = n#

Explanation:

#x^-2 = 9#

Make the exponent positive by using the rule #x^-n = 1/x^n#

#1/x^2 = 9#

#1 = 9x^2#

#1/9 = x^2#

#sqrt(1/9) = x#

# 1/3 = x# (a negative answer is not possible since the log of a negative number is undefined)

Practice exercises:

  1. Solve for x in #log_(2x)4 = -4#

Challenge problem

What is the value of x in #log_x4 = x#?

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