原式=(2cos3&+sin2&+cos&-3)/(2+2cos2&+cos&) =(2cos3&+1-cos2&+cos&-3)/(2+2cos2&+cos&) =(2cos3&-2+cos&-cos2&)/(2+2cos2&+cos&) =[2(cos&-1)(cos2&+cos&+1)-cos&(cos&-1)]/(2+2cos2&+cos&) =(cos&-1)(2cos2&+2cos&+2-cos&)/(2+2cos2&+cos&) =cos&-1 把f=(π/3)代入cos&-1,得:cos(π/3)-1=0.5
f(&)=2cos3&+sin2(2π-&)+cos(2π-&)--3/2+2cos2(π+&)+cos(-&),求f(
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