作业帮已知f(x)=sin(nπ-x)cos(nπ+ x)/cos[(n+1)π-x]*tan(x-nπ)(n属于Z)化简f(x)
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![已知f(x)=sin(nπ-x)cos(nπ+ x)/cos[(n+1)π-x]*tan(x-nπ)(n属于Z)化简f(x)](/uploads/image/z/2586636-36-6.jpg?t=%E5%B7%B2%E7%9F%A5f%EF%BC%88x%EF%BC%89%3Dsin%EF%BC%88n%CF%80-x%EF%BC%89cos%EF%BC%88n%CF%80%2B+x%EF%BC%89%2Fcos%5B%28n%2B1%29%CF%80-x%5D%2Atan%28x-n%CF%80%29%EF%BC%88n%E5%B1%9E%E4%BA%8EZ%EF%BC%89%E5%8C%96%E7%AE%80f%EF%BC%88x%EF%BC%89)
已知f(x)=sin(nπ-x)cos(nπ+ x)/cos[(n+1)π-x]*tan(x-nπ)(n属于Z)化简f(x)
已知f(x)=sin(nπ-x)cos(nπ+ x)/cos[(n+1)π-x]*tan(x-nπ)(n属于Z)化简f(x)
已知f(x)=sin(nπ-x)cos(nπ+ x)/cos[(n+1)π-x]*tan(x-nπ)(n属于Z)化简f(x)
当n为偶数时f(x)=sin(nπ-x)cos(nπ+ x)/cos[(n+1)π-x]*tan(x-nπ)=-[sinxcosx/cos(π-x)]tanx=
sinxtanx
当n为奇数时,f(x)=sin(nπ-x)cos(nπ+ x)/cos[(n+1)π-x]*tan(x-nπ)=-[sinxcosx/cosx]tanx
=-sinxtanx