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已知tanα=2,求1/(sin^2α-sinαcosα-cos^α).由sin^2α=4/5,cos^2α=1/5 且
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已知tanα=2,求1/(sin^2α-sinαcosα-cos^α).
由sin^2α=4/5,cos^2α=1/5 且tanα=sinα/cosα=2 可知1/(sin^2α-sinαcosα-cos^α)=1/(sin^2α-3cos^α)=1/(4/5-3/5)=5 想问的是:①sin^2α=4/5,cos^2α=1/5是怎么得出来的?②1/(sin^2α-sinαcosα-cos^α)是怎么得到1/(sin^2α-3cos^α)的?
已知tanα=2,求1/(sin^2α-sinαcosα-cos^α).
由sin^2α=4/5,cos^2α=1/5 且tanα=sinα/cosα=2 可知1/(sin^2α-sinαcosα-cos^α)=1/(sin^2α-3cos^α)=1/(4/5-3/5)=5 想问的是:①sin^2α=4/5,cos^2α=1/5是怎么得出来的?②1/(sin^2α-sinαcosα-cos^α)是怎么得到1/(sin^2α-3cos^α)的?
由sin^2α=4/5,cos^2α=1/5 且tanα=sinα/cosα=2 可知1/(sin^2α-sinαcosα-cos^α)=1/(sin^2α-3cos^α)=1/(4/5-3/5)=5 想问的是:①sin^2α=4/5,cos^2α=1/5是怎么得出来的?②1/(sin^2α-sinαcosα-cos^α)是怎么得到1/(sin^2α-3cos^α)的?
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