A)sin4x+cos^2×2x=2 б)3sin^2x+sin2x=2
3sin²x+sin2x=2⇒3sin²x+2sinxcosx-2sin²x-2cos²x=0 sin²x+2sinxcosx-2cos²x=0⇒делим на cos²x: tg²x+2tgx-2=0;⇒tgx=y; y²+2y-2=0;⇒y=-1⁺₋√1+2=-1⁺₋√3; y₁=-1+√3;⇒tgx=-1+√3=0.73;⇒x=arctg0.73+kπ;k∈Z; y₂=-1-√3;⇒tgx=-1-√3=-2.73;⇒x=arctg(-2.73)+kπ;k∈Z.