函数f(x)=3sin(wx+π/4)(w>0,x∈R),的最小周期为2π/31.求f(x)的解析式2.已知f(2a/3+π/12)=-3/2*√2,0

设函数f(x)=sin(wx+t)(-π/2 设函数f(x)=sin(wx+t)(-π/2 [非常急]已知函数f(x)=根号3sin(wx+φ)-cos(wx+φ)(0 已知函数f(x)=根号3sin(wx+φ)-cos(wx+φ)(0 已知函数f(x)=√3sin(wx+φ)-cos(wx+φ)(0 已知函数f(x)=根号3sin(wx+a)-cos(wx+a)(0 已知函数f(x)=根号3sin(wx+φ)-cos(wx+φ)(0 已知函数f(x)=√3 sin( wx+φ)-cos(wx+φ) (0 已知函数f(x)=根号3sin(wx+fai)-cos(wx+fai)(0 已知函数f(x)=√3 sin( wx+φ)-cos(wx+φ) (0 已知函数f(x)=√3sin(wx+φ)-cos(wx+φ)(0 函数y=cos^2wx-sin^2wx的最小正周期是π,则函数f(x)=2sin(wx+π/4)的一个单调递增函数y=cos^2wx-sin^2wx(w大于0）的最小正周期是兀,则函数y=2sin(wx+兀/4）的单调增区间是多少? 已知函数f(x)=sin(wx+π/3)(w>0)的单调增区间为 已知函数f(x)=根号3sin(wx+φ)++(w>0,-π/2 已知函数f(x)=根号3sin(wx+φ)++(w>0,-π/2 函数f(x)=√3sin^(wx/2)+sin(wx/2)cos(wx/2) (w>0)的周期为π,求w的值和函数f(x)的单调递增区间 已知函数f(x)=sin (wx+兀/3)-cOs (wx+兀/6)-2sin ^2 wx/2+1已知函数f(x)=sin (wx+兀/3)-cOs (wx+兀/6)-2sin ^2 wx/2+1,w>0,x∈R.①若函数f(x)的周期为兀,求w.②在①的条件下,求函数f(x)在区间[-兀/4,兀/4]上的最大值和最 已知函数f x=√3sin(wx+φ/2)*cos(wx+φ/2)+sin^2(wx+φ/2)(w>0,0