1个回答
展开全部
cos(θ-3π/2)=cos(3π/2-θ)=cos[π+(π/2-θ)]=
=-cos(π/2-θ)=-[-sinθ]=sinθ
sin(7π/2+θ)=sin[3π+(π/2+θ)]=
=-sin(π/2+θ)=-cosθ
sin(-θ-π)=-sin(π+θ)=-[-sinθ]=sinθ
所以,f(θ)=cos(θ-3π/2)sin(7π/2+θ)/sin(-θ-π)=sinθ(-cosθ)/sinθ=-cosθ
(1) f(θ)=-cosθ=1/3,则cosθ=-1/3,
tan²θ=sin²θ/告握cos²θ=(1-cos²激友晌θ)/cos²θ=
=(1-1/9)/(1/9)=8
tanθ=±√8=±2√2。
(2) f(5π/明锋6+θ)=-cos(5π/6+θ)=-[-cos[π-(5π/6+θ)]]=-[-cos(π/6-θ)]=-f(π/6-θ)=-1/3
=-cos(π/2-θ)=-[-sinθ]=sinθ
sin(7π/2+θ)=sin[3π+(π/2+θ)]=
=-sin(π/2+θ)=-cosθ
sin(-θ-π)=-sin(π+θ)=-[-sinθ]=sinθ
所以,f(θ)=cos(θ-3π/2)sin(7π/2+θ)/sin(-θ-π)=sinθ(-cosθ)/sinθ=-cosθ
(1) f(θ)=-cosθ=1/3,则cosθ=-1/3,
tan²θ=sin²θ/告握cos²θ=(1-cos²激友晌θ)/cos²θ=
=(1-1/9)/(1/9)=8
tanθ=±√8=±2√2。
(2) f(5π/明锋6+θ)=-cos(5π/6+θ)=-[-cos[π-(5π/6+θ)]]=-[-cos(π/6-θ)]=-f(π/6-θ)=-1/3
推荐律师服务:
若未解决您的问题,请您详细描述您的问题,通过百度律临进行免费专业咨询