Solve this simultaneously log(x-2) + log 2 = 2log y and log( x -3y+3) = 0

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oobleck · Accepted Answer

log(x-2) + log 2 = 2log y log( x -3y+3) = 0 removing the logs, this becomes 2(x-2) = y^2 x-3y+3 = 1 since x = 3y-2, we now have 2(3y-2)-4 = y^2 y^2-6y+8 = 0 (y-2)(y-4) = 0 y = 2 or 4 so x = 4 or 10