Question

Solve the equation on the interval [ 0, 2 pi] (tan x + ?3)(2cos x + 1) = 0 Solve the equation of the interval (0, 2pi) cosx=sinx I squared both sides to get :cos²x=sin²x... solve the equation on the interval [0,2pi) cos(x+pi/4)-cos(x-pi/4)=1 solve the equation on the interval [0,2pi) sin^2x=1 Solve the equation in the interval [0,2pi]. List all solutions tan^2(x)+0.8 tan(x)-3.84 = 0 Solve the equation on the interval 0 <= theta < 2pi for cot (theta) = 2. I know the answer is .46,3... Solve the equation on the interval [0,360) cos^2t+2cos(t)+1=0 Solve the equation on the interval [0,2pi). Cos2x=square root 2/2 solve the equation in the interval from 0 to 2π, 4cos(t)=3