Ask a New Question
Menu

Solve log2(x-1) = 5-log2(x+3) for x.

base 2.

1 answer

Log2(x-1) = 5 - Log2(x+3).
Log2(x-1) + Log2(x+3) = 5
Log2((x-1)(x+3)) = 5
Log2(x^2+3x-x-3) = 5
Log2(x^2+2x-3) = 5
x^2 + 2x -3 = 2^5 = 32
x^2 + 2x -3 -32 = 0
x^2 + 2x -35 = 0
(x-5)(x+7) = 0

x-5 = 0
X = 5.

x+7 = 0
X = -7.

Solution set: X = -7, X = 5.
Similar Questions
  1. i need help with these two homework problemsUse the Laws of Logarithms to combine the expression into a single logarithm log2 5
    1. answers icon 1 answer
  2. solve the equationlog2(x+4)-log4x=2 the 2 and 4 are lower than the g This is what I got: log2(x+4)+log2(4^x)=2 log2((x+4)*4^x)=2
    1. answers icon 1 answer
  3. The problem I have to solve is log with base 2 ^6 multiply by log base 6 ^ 8.I use the change of base formula and got log6/log2
    1. answers icon 1 answer
    1. answers icon 1 answer
more similar questions