cos(-19/6π)=?
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cos(-19/6π)=?cos(-19/6π)=?cos(-19/6π)=?cos(-19/6π)=cos(-3π-1/6π)=cos(-π-1/6π)=cos(π+1/6π)=-cos(1/6π)
cos(-19/6π)=?
cos(-19/6π)=?
cos(-19/6π)=?
cos(-19/6π)
=cos (-3π-1/6π)
=cos(-π-1/6π)
=cos(π+1/6π)
=-cos(1/6π)
=-√3/2
cos(-19/6π)=?
化简cos(π/6a)+cos(π/6-a)=
cos(π/7) + cos(6π/7) =几
cos(- 19/4 π)=?
cos(-19/6n)=
cos 2π/7 +cos 4π/7 +cos 6π/7=?
请问cos(2π/7)+cos(4π/7)+cos(6π/7)=?,
cos(π/32)*cos(π/16)*cos(π/8)=
cos(19π/6)+tan(16π/3)=?
由cos(a+b)=cos a cos b-sin a sin b cos(a-b)=cos a cos b+sin a sin b解题设a为锐角,证:1、2分之根3乘cos a + 2分之1乘sin a=cos(6分之π-a)2、cos a-sin a=根号2cos(4分之π+a)
cos(2π/7)+cos(4π/7)+cos(6π/7)= -1/2.证明[cos(2π/7)]^2+[cos(4π/7)]^2+[cos(6π/7)]^2=5/4
cos(2π/7)+cos(4π/7)+cos(6π/7)= -1/2.证明[cos(2π/7)]^2+[cos(4π/7)]^2+[cos(6π/7)]^2=5/4
求数学高手帮忙cos(2π/7)+cos(4π/7))+cos(6π/7)=?(化简求值)
cosπ/6=(),sinπ=()
已知cos(x-π/6)=-根号三分之三 则cos(x)+cos(x-π/3)的值是
cos(-19/6∏)=
cos(-17/6π)=
cosπ/12=