f(x+y)+f(x-y)=2f(x)cosy式中用π/2
替换y,得f(x+π/2)+f(x-π/2 )=2f(x)cosπ/2 =0
∴f(x-π/2)=-f(x+π/2)=-f[(x-π/2)+π]
由x-π/2的任意性知,对任意x∈R,均有:f(x)=-f(x+π)
∴f(x+2π)=f[(x+π)+π]=-f(x+π)=-[-f(x)]=f(x)
∴f(x)为周期函数,且2π为其一个周期.
设函数f(x)定义域为R,对一切x,y属于R,均满足f(x+y)+f(x-y)=2f(x)cosy,求证f(x)为周期函
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