作业帮cos(2π/7)cos(4π/7)cos(6π/7)怎么解·要过程xiexie````
来源:学生作业帮助网 编辑:作业帮 时间:2024/11/05 23:22:47
cos(2π/7)cos(4π/7)cos(6π/7)怎么解·要过程xiexie````
cos(2π/7)cos(4π/7)cos(6π/7)怎么解·要过程
xiexie````
cos(2π/7)cos(4π/7)cos(6π/7)怎么解·要过程xiexie````
cos(2π/7)cos(4π/7)cos(6π/7)
=cos(2π/7)cos(4π/7)[-cos(π-6π/7)]
=-cos(π/7)cos(2π/7)cos(4π/7)
=-2sin(π/7)cos(π/7)cos(2π/7)cos(4π/7)/[2sin(π/7)]
=-sin(2π/7)cos(2π/7)cos(4π/7)/[2sin(π/7)]
=-2sin(2π/7)cos(2π/7)cos(4π/7)/[4sin(π/7)]
=-sin(4π/7)cos(4π/7)/[4sin(π/7)]
=-2sin(4π/7)cos(4π/7)/[8sin(π/7)]
=-sin(8π/7)/[8sin(π/7)]
=-sin(π+π/7)/[8sin(π/7)]
=sin(π/7)/[8sin(π/7)]
=1/8
化简求值cos(π/7)cos(2π/7)cos(4π/7)
cos 2π/7 +cos 4π/7 +cos 6π/7=?
求cos(2π/7)*cos(4π/7)*cos(6π/7)的值
请问cos(2π/7)+cos(4π/7)+cos(6π/7)=?,
Cos[π/7] + Cos[2 π/7] + Cos[3 π/7] + Cos[4 π/7] + Cos[5 π/7] + Cos[6 π/7] + Cos[7π/7]过程思路 不要只有答案哦
-cos(7/4) =cos(π-(7/4))
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
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^2 π/8+cos ^2 3π/8+ cos^2 5π/8+cos^2 7π/8=?
求数学高手帮忙cos(2π/7)+cos(4π/7))+cos(6π/7)=?(化简求值)
cos(2π/7)cos(4π/7)cos(6π/7)怎么解·要过程xiexie````
计算:cos(π/5)+cos(2π/5)+cos(3π/5)+cos(4π/5)
cos(π/17)*cos(2π/17)*cos(4π/17)*cos(8π/17)
cos(pai/15)×cos(2pai/15)×cos(3pai/15)×cos(4pai/15)×cos(5pai/15)×cos(6pai/15)×cos(7pai/15)求值
cos(pai/15)×cos(2pai/15)×cos(3pai/15)×cos(4pai/15)×cos(5pai/15)×cos(6pai/15)×cos(7pai/15)求值
求值:cos(π/11)cos(2π/11)cos(3π/11)cos(4π/11)cos(5π/11)
求值:cos(π/11)-cos(2π/11)+cos(3π/11)-cos(4π/11)+cos(5π/11)
cos(π/11)cos(2π/11)cos(3π/11)cos(4π/11)cos(5π/11)