已知tan[(π/4)+α]=2,求(sin2α-cos^2α)/(1+cos2α)的值
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tan[(π/4)+α]=2 => (1+tanα)/(1-tanα)=2 =>tanα=1/3
(sin2α-cos²α)/(1+cos2α)
=(2sinαcosα-cos²α)/2cos²α 同除cosα
=(2tanα-1)/2
=-1/6
sin2α=2sinacosα
cos2α=cos²α-sin²α=2cos²α-1=1-sin²α =>cos2α+1=2cos²α
tan(a+b)=(tana+tanb)/(1-tanatanb)
(sin2α-cos²α)/(1+cos2α)
=(2sinαcosα-cos²α)/2cos²α 同除cosα
=(2tanα-1)/2
=-1/6
sin2α=2sinacosα
cos2α=cos²α-sin²α=2cos²α-1=1-sin²α =>cos2α+1=2cos²α
tan(a+b)=(tana+tanb)/(1-tanatanb)
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tan(α+π/4)=2
(tanα+tanπ/4)/(1-tanαtanπ/4)=2
(tanα+1)/(1-tanα)=2
tanα+1=2-2tanα
tanα=1/3
(sin2α-cos^2α)/(1+cos2α)
= (2sinαcosα-cos^2α)/(1+2cos^2α-1)
= (2sinαcosα-cos^2α)/(2cos^2α)
= tanα-1/2
= 1/3 - 1/2
= -1/6
(tanα+tanπ/4)/(1-tanαtanπ/4)=2
(tanα+1)/(1-tanα)=2
tanα+1=2-2tanα
tanα=1/3
(sin2α-cos^2α)/(1+cos2α)
= (2sinαcosα-cos^2α)/(1+2cos^2α-1)
= (2sinαcosα-cos^2α)/(2cos^2α)
= tanα-1/2
= 1/3 - 1/2
= -1/6
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