cos²(-θ)=cos²θ
cos²(π/2-θ)=sin²θ
cos²(π-θ)=cos²θ
cos²(3π/2-θ)=cos²{π+(π/2-θ)}=cos²(π/2-θ)=sin²θ
∴(与式) =cos²θ+sin²θ+cos²θ+sin²θ=2(cos²θ+sin²θ)=2
Mathematics
Senior High
(2)の解き方を教えてください🙏
264 次の式の値を求めよ。
*(1) sin(ー6)cos(0+)+sin(0+)cos(-0)
2
2
(2) cos"(-6)+cos(-0)+cos"(πー0)+cos"(
s(4-0+cos"(エー0)+cos"
オーの
π一0
2
2
Answers
Were you able to resolve your confusion?
Users viewing this question
are also looking at these questions 😉
