SOLUTION: Please show me how to solve for x here: 4^2x = 16 Appreciate your help. Thanks!

Algebra ->  Quadratic Equations and Parabolas -> SOLUTION: Please show me how to solve for x here: 4^2x = 16 Appreciate your help. Thanks!      Log On


   

Question 1093270: Please show me how to solve for x here: 4^2x = 16
Appreciate your help. Thanks!
Found 2 solutions by Theo, Alan3354:
Answer by Theo(13342) About Me  (Show Source):
You can put this solution on YOUR website!
4^(2x) = 16

take the log of both sides to get log(4^(2x)) = log(16)

this is equivalent to 2x * log(4) = log(16)

divide both sides by log(4) to get 2c = log(16)/log(4)

divide both sides by 2 to get x = log(16)/log(4)/2

use your calculator to get x = 1

you could also have done:

4^(2x) = 16

since you know that 4^2 = 16, then you get:

4^(2x) = 16 and 4^2 = 16

since they're both equal to 16 then they're both equal to each other and you get:

4^2 = 4^(2x)

this can only be true if 2 = 2x.

solve for x to get x = 1.

note that the properties of logs and exponents that were used were:

log(x^a) = a*log(x)

if x^a = x^b, then a = b










Answer by Alan3354(69443) About Me  (Show Source):
You can put this solution on YOUR website!
4%5E2x+=+16
16x = 16
x = 1