若α=arctan(-1/2),则cos2α=
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若α=arctan(-1/2),则cos2α=若α=arctan(-1/2),则cos2α=若α=arctan(-1/2),则cos2α=tana=-1/2,则sina/cosa=-1/2,由于(si
若α=arctan(-1/2),则cos2α=
若α=arctan(-1/2),则cos2α=
若α=arctan(-1/2),则cos2α=
tana=-1/2,则sin a/cos a=-1/2,由于(sin a)^2+(cos a)^2=1,所以sin a=-1/根号5,cos a=2/根号5,
cos2a=1-2(sin a)^2=3/5
cos[arctan(1/2) - arctan(-2)]=?
cos[2arctan(-1/2)]=?
cos[1/2arctan(-3/4)].cos[1/2arctan(-3/4)]=
若α=arctan(-1/2),则cos2α=
计算cos(1/2arctan(-3/4))
cos(arctan(-2)-arcsin3/5)
arctan(-2)+arctan(-3)=?
对函数y=ln[cos(arctan(sinx))]求导最后答案是-sinxcosx/(1+sinx^2)
cos(arctan(-2)) = 能不能给讲解下谢谢
求证:arctan 1/2+arctan 1/5+arctan 1/8=π/4
z=arctan x/(1+y^2),则dz=?
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y=arctan(x^2+1)
求值1.cos[arcsin(-4/5)-arctan(-3/4)]2.sin[1/2arcsin(-12/13)]
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高一数学:tan[arcsin1+arctan(-√3/3)]+cos[arccos(-1/2)+arctan0]
用复变函数证明arctan (1/2) + arctan (1/3) =π/4
证 若x倍cosα+y倍sinα=(根号下a^2+b^2)倍sin【arctan(x/y)】?老师在课上跟我们直接说的结论 我就是想知道为什么。xcosα+ysinα=[√(a²+b²)]sin[α+arctan(x/y)]