若2sin(π/4+θ)=sinθ+cosθ,2sin^2(β)=sin2θ,求证sin2α+1/2cos2β=0sin2α = (1/2)cos2β 我知道了谢谢

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若sin(θ/2)=4/5,且sinθ sinθ/(1+sinθ)-sinθ/(1-sinθ) 若tanθ=根号2 则原式= 若(sinθ+cosθ)/(sinθ-cosθ)=2,则sin(θ-5π)*sin(3π/2-θ)等于? 若2sin(π/4+a)=sinθ+cosθ,2sin^2β=sin2θ,求证sin2a+(1/2)cos2β=0. 若2sin(π/4+a)=sinθ+cosθ,2sin^2β=sin2θ,求证sin2a+(1/2)cos2β=0 若 sinθ ·cosθ=1/8,求 sinθ +cosθ?怎样用单位圆确定 sinθ 和cosθ大若 sinθ ·cosθ=1/8,求 sinθ +cosθ?怎样用单位圆确定 sinθ 和cosθ谁大谁小?θ属于(π/4,π/2),关键是怎样用单位圆比较大小 求值:(tan10°-√3)×cos10°/sin50° 求证:[sin(2α+β)]/sinα- 2cos(α+β)=sinβ/cosα 化简cosθ+cos(θ+2π/3)+cos(θ+4π/3) 证明:sin(α+β)sin(α-β)=sin^2α-sin^2β 若2sin(π/4+α)=sinθ+cosθ,2sin²β=sin2θ,求证:sin2α+1/2cos2β=0 ①利用公式sin(π-θ)=sinθ和sin(∏+θ)=-sinθ证明:sin(-θ)=-sinθ②证明tanθsinθ∕tanθ-sinθ=1+cosθ∕sinθ③已知sinα-2cosα+1=0,α≠kπ+π∕2,k∈z求:tan(3π-α)和1∕sin2α-sinαcosα+1的值‍ sin(π/4+θ)*sin(π/4-θ)=2/5,则cos2θ= 2(sinθ+cosθ)= 2√2sin(θ+π/4)为什么?; (-π/2 (cosθ+sinθ)=√2sin(θ+π/4) 证明sinθ+cosθ=根号2sin(θ+π/4) 若sin(θ-π)=2cos(2π-θ)求(1)sinθ+5cosθ/sinθ-3cosθ (2)sinθcosθ的值 化简:2sin(π/4+θ)sin(π/4-θ)=? 1.已知2sin(3π+θ)=cos(π+θ),求2sin 已知tanθ=(sin α-cos α)/(sin α+cos α) a,θ(0,π/2) 求证cos(3/2兀+ α) -sin(5π/2-α)=根号2sin(θ-4π) 若[sin(π-θ)+cos(2π-θ)]/[cos(5π/2-θ)+sin(3π/2+θ)]=2,求sinθ*cosθ的值若[sin(π-θ)+cos(2π-θ)]/[cos(5π/2-θ)+sin(3π/2+θ)]=2,求sinθ*cosθ的值