2sin^2x-5sin 2x cos 2x+2cos^2x=0;2tq²2x - 5tq2x +2 =0 ;
tq²2x - (1/2+2)tq2x +1 =0 ;
[ tq2x =1/2 ; tq2x =2 .
[ 2x=arctq(1/2) +πn ; [ 2x=arctq2 +πn , n∈Z .
x₁=(1/2)*arctq(1/2) +(π/2)*n , n∈Z ; x₂=(1/2)*arctq2 +(π/2)*n, n∈Z .
ответ : (1/2)*arctq(1/2) +(π/2)*n , (1/2)*arctq2 +(π/2)*n, n∈Z .
Решение во вложении.....................
cosx=0 или sinx=3 - нет решений
x=пи/2 + пиk, k = Z
S=7•4=28
P=(7+4)•2=22
Ответ: ш-4см д-7 см