cos1/5π*cos2/5π这个式子该怎么下手?
来源:学生作业帮助网 编辑:作业帮 时间:2024/11/15 16:49:27
x)K/67=ߠd/|c=ONx~鳆';;~moT,W~
U0*̃Jj#d5m5L#&PaTaS.jkob_\g
눙
cos1/5π*cos2/5π这个式子该怎么下手?
cos1/5π*cos2/5π
这个式子该怎么下手?
cos1/5π*cos2/5π这个式子该怎么下手?
cos1/5π*cos2/5π=(2sin1/5π*cos1/5π*cos2/5π)/(2sin1/5π)=(sin2/5π*cos2/5π)/(2sin1/5π)=(sin4/5π)/(4sin1/5π)=(sin1/5π)/4sin1/5π=1/4
cos1/5π*cos2/5π这个式子该怎么下手?
cos1/5π+cos2/5π+cos3/5π+cos4/5π=多少
cos1°×cos1°+cos2°×cos2°+……+cos (nπ)×cos(nπ)=?(n∈正整数)o(∩_∩)o...Ps:不会打平方符号啊 有谁会 顺便教一下了
cos1/9π*cos2/9π*cos3/9π*cos4/9π=?怎么算?答案是1/16,
定义在R上的偶函数f(x)满足f(x+2)=f(x),当x属于[3,5]时,f(x)=2-|x-4|,则A.f(cos2)>f(sin2)B.f(sin1)>f(cos1)C.F(cos2π/3)
a=-cos2,b=-2/5,c=cos1,则a,b,c大小顺序是?
a等于-cos2,b等于-2/5,c等于cos1,则abc的大小顺序是?详细过程!
cos2=a,cos1=?
求COSπ/5*COS2π/5
cosπ/5×cos2π/5=
COSπ/5乘以COS2π/5
cosπ/5×cos2π/5
cosπ/5cos2π/5
cosπ/5cos2π/5=?
求值cos2π/5*tan5π
已知函数F(X)是R上的偶函数,满足f(X)=-f(x+1),当x∈[2011,2012]时,f(x)=x-2003,则( )A.f(sinπ/3)>f(cosπ/3)B.f(sin2)>f(cos2)C.f(sinπ/5)<f(cosπ/5)D.f(sin1)<f(cos1)
定义在R上的偶函数f(x)满足f(x)=f(x+2),当x∈[3,5]时,f(x)=2-|x-4|,则A.f(sinπ/6)f(cos1) C.f(cos2/3π)f(sin2)
定义在R上的偶函数f(x)满足f(x)=f(x+2),当x∈[3,5] 时,f(x)=2-|x-4|,则 A.f(sinπ/6)f(cos1) C.f(cos2/3 π)f(sin2)要详细过程啊!