求证tan^2x+1/tan^2x=[2(3+cos4x)]/(1-cos4x)
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求证tan^2x+1/tan^2x=[2(3+cos4x)]/(1-cos4x)求证tan^2x+1/tan^2x=[2(3+cos4x)]/(1-cos4x)求证tan^2x+1/tan^2x=[2
求证tan^2x+1/tan^2x=[2(3+cos4x)]/(1-cos4x)
求证tan^2x+1/tan^2x=[2(3+cos4x)]/(1-cos4x)
求证tan^2x+1/tan^2x=[2(3+cos4x)]/(1-cos4x)
左边=sin^2x/cos^2 + cos^2/sin^2x=(sin^4x+cos^4x)/(cos^2xsin^2x)=(sin^2x+cos^2x)^2-2sin^2xcos^2x/(sin^2xcos^2x)=(1-sin^2(2x)/2)/(sin^2(2x)/4)=[4-2(1-cos4x)/2]/[(1-cos4x)/2]=右边
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tan( x/2+π/4)+tan(x/2-π/4 )=2tanxtan(x/2+π/4)+tan(x/2-π/4)=[tan(x/2)+tan(π/4)]/[1-tan(x/2)tan(π/4)]+[tan(x/2)-tan(π/4)]/[1+tan(x/2)tan(π/4)]=[tan(x/2)+1]/[1-tan(x/2)]+[tan(x/2)-1]/[1+tan(x/2)]=[(tan(x/2)+1)^2-(tan(x/2)-1)^2]/[1-(tan(x
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这道题为什么第二步的+到了第三步变成了-1.tan(x/2+π/4)+tan(x/2-π/4)=[tan(x/2)+tan(π/4)]/[1-tan(x/2)tan(π/4)]+[tan(x/2)-tan(π/4)]/[1+tan(x/2)tan(π/4)]=[tan(x/2)+1]/[1-tan(x/2)]+[tan(x/2)-1]/[1+tan(x/2)]=[(tan(x/2)+1)^2-(tan(x/2)-