Cos^2(x)+cos^2(2x)=1
Cos²x+cos²2x=1, cos²2x=1-cos²x (cos2x)²=sin²x (1-2sin²x)²=sin²x 1-4sin²x+4sin⁴x-sin²x=0 4sin⁴x-5sin²x+1=0 sin²x=t, t∈[-1;1] 4t²-5t+1=0 D=25-16=9 t₁=1, t₂=1/4 t=1 sin²x=1, sinx=+-1 sinx=-1, x=-π/2+2πn, n∈Z sinx=1, x=π/2+2πn, n∈Z t=1/4 sin²x=1/4, sinx=+-1/2 sinx=-1/2, x=(-1)^(n+1)*π/6+πn, n∈Z sinx=1/2, x=(-1)^n*π/6+πn, n∈Z ответ: x₁=-π/2+2πn, n∈Z x₂=π/2+2πn, n∈Z x₃=(-1)^(n+1)*π/6+πn, n∈Z x₄=(-1)^n*π/6+πn, n∈Z
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