Sin3a*sin2a-cos3a*cos2a-cos(3п/2-a)
Наверно так 3*2-3*2-3/2=-1,5
((sinα-sin3α)/sin2α)·((cosα-cos3α)/cos2α= =[2·sin((α-3α)/2)·cos((α+3α)/2)/sin2α]·[-2sin(-α)·sin2α/cos2α]= =[-2·sinα·cos2α/sin2α]·[2sinα·sin2α/cos2α]= =(-4)·sin²α·(1/2·sin4α)/(1/2·sin4α)= =-4sin²α;