问题标题:
二倍角的.cosπ/5乘cos2π/5的值?y=cosx/(1-sinx)的单调递增区间?
问题描述:
二倍角的.
cosπ/5乘cos2π/5的值?
y=cosx/(1-sinx)的单调递增区间?
李吉桂回答:
cosπ/5*cos2π/5=(4sinπ/5*cosπ/5*cos2π/5)/(4sinπ/5)(用二倍角公式)=(2sin2π/5*cos2π/5)/(4sinπ/5)=(sin4π/5)/(4sinπ/5)=1/4y=cosx/(1-sinx)=[(cosx/2)^2-(sinx/2)^2]/(sinx/2-cosx/2)^2(二倍角)=-(s...
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