已知函数y=sin²x sin2x 3cos²x,求函数的最小值及此时的x的集合
来源:学生作业帮助网 编辑:作业帮 时间:2024/11/17 09:17:00
振幅为2;周期为π;初相为π/3单增区间:kπ-5π/12≦x≦kπ+π/12对称轴:x=﹙1/2﹚kπ+(1/12)π
(0,1)代入原式知sinφ=1/2因为|φ|
f(-x)=f(x)2sin(-wx+θ)=2sin(wx+θ)若-wx+θ=2kπ+wx+θwx=-kπ不成立因此,-wx+θ=2kπ+π-(wx+θ)θ=kπ+π/2所以,可能是:θ=π/2再问:
设t=3x+π/3,则y=sin(3x+π/3)=sint的单调递增区间为:2kπ-π/2≤t≤2kπ+π/2,k∈Z也即2kπ-π/2≤3x+π/3≤2kπ+π/2得2kπ/3-5π/18≤x≤2k
由化简sinx+cosx前分别乘以根号2*sin45.根号2*cos45.,得解根号2sinxy=sinx的平方+根好2*sinx+2令t=sinx-1=
y=sin²x+sinx+cosx+2=(1-cos2x)/2+√2sin(x+л/4)+2=(1/2)*sin(2x+л/2)+√2*sin(x+л/4)+5/2;=(1/2)*sin(2
我列个去,就算我高中毕业到现在已经8年了,我也看的出来1楼的乱说的撒,值域明显是[-2,2]嘛
(-π/2,π/2)应小于等于半个周期,.-1≤ω≤1,又函数是减函数,sin(-ωπ/2)>sin(ωπ/2),sin(ωπ/2)
偶函数则x=0是对称轴sin的对称轴是在函数取最值得地方所以sin(0*w+q)=sinq=1或-10
首先得T/2=2π-3π/4=5π/4所以:T=5π/2,即2π/w=5π/2,所以:w=4/5;所以:y=sin(4x/5+A),把点(3π/4,-1)代入,得:-1=sin(-3π/5+A)所以:
因为,-π/2
解由y=sin(pai/4-2x)=-sin(2x-π/4)知当2kπ-π/2≤2x-π/4≤2kπ+π/2,k属于Z时,y是减函数.即当kπ-π/8≤x≤kπ+3π/8,k属于Z时,y是减函数.故函
y=cos2x+sin²x-cosx=cos²x-cosx=(cosx-1/2)²-1/4x=2kπ+π,max(y)=2x=2kπ±π/3,min(y)=-1/4x∈[
y=sin²x+sinxcosx+2=(1-cos2x)/2+(sin2x)/2+2=(1/2)(sin2x-cos2x)+5/2=(1/2)*√2(sin2xcosπ/4-cos2xsin
原式=(1-cos2x)/2+(sin2x)/2+2=(sin2x-cos2x)/2+5/2=(sin(2x-45度))*(根号2)/2+5/2所以是大于(根号2+5)/2,小于(5-根号2)/2
f(x)=4sinωxsin2(ωx2+π4)+cos2ωx=2sinωx[1-cos(ωx+π2)]+1-2sin2ωx=2sinωx[1+sinωx]+1-2sin2ωx=2sinωx+2sin2
方程y=sin(x+y)两边对x求导数有:y'=cos(x+y)(x+y)'=cos(x+y)(1+y')移项整理得:[1-cos(x+y)]y'=cos(x+y)因此:y'=cos(x+y)/[1-
解1当2kπ-π/2≤2x+π/3≤2kπ+π/2,k属于Z时,y是增函数即2kπ-5π/6≤2x≤2kπ+π/6,k属于Z时,y是增函数即kπ-5π/12≤x≤kπ+π/12,k属于Z时,y是增函数
y=cos²x-sin²x+2sinxcosx=cos2x+sin2x=√2sin(2x+π/4)所以值域为【-√2,√2】