已知函数f(x)=sin(x+7π/4)+cos(x-3π/4),x∈R(1)求函数图象的对称中心
(2)已知cos(β-α)=4/5,0<α<β≤π/2求证[f(β)]平方-2=0(3)求f(π/4)+f(2π/4)+f(3π/4)+f(π)+.........f(2...
(2)已知cos(β-α )=4/5,0<α<β ≤π/2求证[f(β)]平方-2=0(3)求f(π/4)+f(2π/4)+f(3π/4)+f(π)+.........f(2011π/4)的值
(2)cos(β+α )=-4/5 展开
(2)cos(β+α )=-4/5 展开
2个回答
展开全部
(1) f(x)=sin(x+7π/4)+cos(x-3π/4)
= √2/2 sinx-√2/√2cosx-√2/2cosx+√2/2sinx
=√2(sinx-cosx)=2sin(x-π/4)
由 x-π/4=kπ, ,k∈Z,得
f(x)对称中心(kπ+π/4,0), k∈Z
(2)法1 ∵ 0<α<β ≤π/2
∴ 0<β+α< π, 0<β-α <π/2
又cos(β+α )=-4/5,cos(β-α )=4/5,
∴sin(β+α )=3/5, sin(β-α )=3/5,
∴cos2β=cos[(β+α )+(β-α )]
=cos(β+α )cos(β-α )-sin(β+α )sin(β-α )
=4/5×(-4/5)-3/5×3/5=-1
∵ 2β∈(0,π], ∴2β=π, β=π/2
∴ f²(β)]-2=[2sin(π/2-π/4)]²-2=0
法2:∵ 0<α<β ≤π/2
∴ 0<β+α< π, 0<β-α <π/2
又cos(β+α )=-4/5,cos(β-α )=4/5
∴(β+α)+(β-α)=π
∴2β=π
下接法1
(3) f(nπ/4)的周期为T=2π/(π/4)=8, 2011=8×251+3
且 f(π/4)+ f(2π/4)+f(3π/4)+f(π)+.....+f(8π/4)=0
∴f(π/4)+f(2π/4)+f(3π/4)+f(π)+.........f(2011π/4
=f(π/4)+ f(2π/4)+f(3π/4)=0+√2+2=√2+2
= √2/2 sinx-√2/√2cosx-√2/2cosx+√2/2sinx
=√2(sinx-cosx)=2sin(x-π/4)
由 x-π/4=kπ, ,k∈Z,得
f(x)对称中心(kπ+π/4,0), k∈Z
(2)法1 ∵ 0<α<β ≤π/2
∴ 0<β+α< π, 0<β-α <π/2
又cos(β+α )=-4/5,cos(β-α )=4/5,
∴sin(β+α )=3/5, sin(β-α )=3/5,
∴cos2β=cos[(β+α )+(β-α )]
=cos(β+α )cos(β-α )-sin(β+α )sin(β-α )
=4/5×(-4/5)-3/5×3/5=-1
∵ 2β∈(0,π], ∴2β=π, β=π/2
∴ f²(β)]-2=[2sin(π/2-π/4)]²-2=0
法2:∵ 0<α<β ≤π/2
∴ 0<β+α< π, 0<β-α <π/2
又cos(β+α )=-4/5,cos(β-α )=4/5
∴(β+α)+(β-α)=π
∴2β=π
下接法1
(3) f(nπ/4)的周期为T=2π/(π/4)=8, 2011=8×251+3
且 f(π/4)+ f(2π/4)+f(3π/4)+f(π)+.....+f(8π/4)=0
∴f(π/4)+f(2π/4)+f(3π/4)+f(π)+.........f(2011π/4
=f(π/4)+ f(2π/4)+f(3π/4)=0+√2+2=√2+2
本回答由提问者推荐
已赞过
已踩过<
评论
收起
你对这个回答的评价是?
展开全部
dddd
已赞过
已踩过<
评论
收起
你对这个回答的评价是?
推荐律师服务:
若未解决您的问题,请您详细描述您的问题,通过百度律临进行免费专业咨询
