高一数学,求解,,,
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tanθ=-1/2,
(1)原式=(sinθ)^2-2sinθcosθ-(cosθ)^2+4(cosθ)^2-3(sinθ)^2(改题了)
=3(cosθ)^2-2(sinθ)^2-2sinθcosθ
=[3-(tanθ)^2-2tanθ]/[1+(tanθ)^2]
=[3-1/4+1]/(5/4)
=3.
(2)原式=(sinθ)^2+3sinθcosθ-1
=[(tanθ)^2+3tanθ]/[1+(tanθ)^2]-1
=(1/4-3/2)/(5/4)-1
=-1-1
=-2.
(1)原式=(sinθ)^2-2sinθcosθ-(cosθ)^2+4(cosθ)^2-3(sinθ)^2(改题了)
=3(cosθ)^2-2(sinθ)^2-2sinθcosθ
=[3-(tanθ)^2-2tanθ]/[1+(tanθ)^2]
=[3-1/4+1]/(5/4)
=3.
(2)原式=(sinθ)^2+3sinθcosθ-1
=[(tanθ)^2+3tanθ]/[1+(tanθ)^2]-1
=(1/4-3/2)/(5/4)-1
=-1-1
=-2.
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