cos2α=1/2cos(π/4-α) α属于【0 π】 求sinα+cosα 和 SIN(2α+π/3)
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sin²α*sin²β+cos²α*cos²β-1/2cos2αcos2β=(1-cos2α)/2*(1-cos2β)/2+(1+cos2α)/2*(1+cos2β)/2-1/2cos2α*cos2β=1/4(1+cos2α*cos2β-cos2α-cos2β)+1/4(1+cos2α*cos2β+cos2α+cos2β)-1/2cos2α*cos2β=1/4+1/
已知tan(π /4)=1/ 2 求cos2α/sin2α+cos^2α
若tan(π-α)=1/3,则cos2α/2sinαcosα+cos2α的值为
(2sin2α/1+cos2α)*(cosα)^2/cos2α=?
(2sin2α/1+cos2α)*(cosα)^2/cos2α=多少
(2sin2α/1+cos2α)*(cos^2/cos2α)=?
① cos2α=2 cos2 α-1; ② cos 4α=8 cos4 α-8 cos2 α+1; ③ cos 6α=32 cos6 α-48 cos4 α+18 ① cos2α=2 cos2 α-1;② cos 4α=8 cos4 α-8 cos2 α+1;③ cos 6α=32 cos6 α-48 cos4 α+18 cos2 α-1;④ cos 8α= 128 cos8
sinα-cosα=1/2 求cos2α
[sin4α/(1+cos4α)]×[cos2α/(1+cos2α)]×[cosα/(1+cosα)]=?
证明:cos2α+cos2β=2cos(α+β)cos(α-β)
2cos(α+β)cos(α-β)=cos2α+cos2β
已知cos^4a/cos^2β+sin^4a/sin2^β=1 求证cos^4β/cos^2a+sin^4β/sin^2a=1要证cos^4β/cos^2a+sin^4β/sin^2a=1只需证cos^4βsin2α+sin^4βcos2α=cos2αsin2α(1-sin2β)cos2βsin2α+(1-cos2β)sin2βcos2α=cos2αsin2αcos2βsin2α+sin2βcos2α-sin2
观察下列等式:① cos2α=2 cos2 α-1; ② cos 4α=8 cos4 α-8 cos2 α+1; ③ cos 6α=32 cos6 α-
[sin4α/(1+cosα)]×[cos2α/(1+cos2α)]×[cosα/(1+cosα)]×{cos(α/2)/[1+cos(α/2)]}=?应该是[sin4α/(1+cos4α)]×[cos2α/(1+cos2α)]×[cosα/(1+cosα)]×{cos(α/2)/[1+cos(α/2)]}=?打错了。对不起。
cos2α/[sin(α-π/4)]=-根号2 /2,cosα+sinα=?
求证:cos2αcos2β=1/2{cos2(α+β)+cos2(α-β)}
设sin(π/4+α)+cos(π/4+α)=-1/5,则cos2α=
已知α∈(0,π),sinα+cosα=1/2 求cos2α