Cos2x +√2 *cos(π/2 +x) +1 =0 ; x ∈[2π; 3,5π].
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1- 2sin²x +√2*(-sinx ) +1 = 0 ;
2sin²x +√2sinx -2 = 0 ; * * * sin²x +(√2)/2sinx -1 = 0 * * *
sinx = -√2 * * *-√2 < -1 не имеет решения * * *
sinx =(√2)/2 . * * * * * x =(-1)^n*π/4 +π*n , n∈Z * * * * *
x₁ = π/4 +2πn ⇒ x =π/4 +2π =9π/4 ∈[2π; 3,5π]..
x₂ =π -π/4 +2πn = 3π/4 +2πn ⇒x = 11π/4 ∈ [2π; 3,5π] .
ответ : 9π/4 ;.11π/4 .