sin(π+α)=-sinα=-1/2
sinα=1/2
sin²α+cos²α=1
cosα=±√3/2
所以原式=cosα=±√3/2
已知sin(π+α)=-二分之一,计算:cos(2π-α)
0
0
2个回答
-
00
更多回答
相关问题
-
sin(派-α)-cos(-α)=二分之一,则sin³(π+α)+cos³(2π-α)=00
-
已知f(α)=sin(π−α)cos(2π−α)cos(−α+32π)cos(π2−α)sin(−π−α)00
-
已知:sin(π+α)=-1/2 计算:sin(π/2+α) cos(α-3π/2) tan(π/2-α)00
-
已知f(α)=sin(α−3π)•cos(π+α)cos(2π−α)•sin(−π−α)•sin(3π2−α)00
-
已知f(α)=sin(α−3π)•cos(2π−α)•sin(−α+3π2)cos(−π−α)•sin(−π−α)00
-
sinα+cosα=二分之一,且0<α<π,求cos2α00
-
sinα=二分之一,α∈(0,π)则cosα=00
-
已知sin(α-π)=2cos(2π-α),求sin(π−α)+5cos(2π−α)3cos(π−α)−sin(−α)的00
-
已知sin(7π-α)-3cos(3π/2+α)=2,则(sin(π-α)+cos(π+α))/(sinα+cos(-α00
-
已知tanα=2,sinα+cosα<0,求[sin(2π-α)*sin(π+α)*cos(-π+α)]/[sin(3π00