大师作文网化简sinx 根号下4cosx 5
来源:学生作业帮助网 编辑:作业帮 时间:2024/11/12 04:38:05
设t=³√(sinx-cosx)sinx-cosx=t³(sinx+cosx)dx=3t²dt代入易得结果为3/2t²+c回代即可得解
根号下(sinx-(sinx)^3)dx=根号下(sinx[1-(sinx)^2])dx=根号下(sinx*cos^2x)dx=根号下(sinx)*cosxdx=根号下(sinx)*dsinx=2/3
(sinx/2)^4=[(sinx/2)^2]^2=[1-(cosx/2)^2]^2=1-2(cosx/2)^2+(cosx/2)^4所以(sinx/2)^4+4(cosx/2)^2=1+2(cosx
∫√[(1-sinx)/(1+sinx)]dx=∫[(1-sinx)^2/(1-sin^2x)]dx=∫(1-sinx)/|cosx|dx当cosx>0时∫(1-sinx)/|cosx|dx=∫(se
=2*(根号3sinx/2+cosx/2)=2(sinx*cos30°+cosxsin30°)=2sin(x+30°)
万能代换:设sinx=2k/(1+k^2),cosx=(1-k^2)/(1+k^2).代入得y=(3k^2+2k+3)/√(5k^2+5+8k+3-3k^2)=(3k^2+2k+3)/√2(k^2+4
1+sinx>01-sinx>0sinx≠1x≠kπ+π/2f(x)=log2√(1-sin^2x)=log2|cosx|0
=(sinx)^2+√3sinxcosx=(1-cos2x)/2+√3/2(2sinxcosx)=1/2-1/2cosx+√3/2sin2x=1/2+sin(-π/6)cos2x+cos(-π/6)s
y'=-sin√x*(√x)'+1/(2√sinx)*sinx'=-sin√x/[2(√x)]+1/(2√sinx)*cosx
1+sinx=(sin(x/2)+cos(x/2))^2即原式=∫(sin(x/2)+cos(x/2))dx=2∫sin(x/2)d(x/2)+2∫cos(x/2)d(x/2)=2sin(x/2)-2
10(根号2/10cosx-根号6/10sinx)=10sin(α+x)其中sinα=根号2/10cosα=根号6/10
提供一个思路:万能公式:sinx=2t/(1+t^2),cosx=(1-t^2)/(1+t^2),其中t=tan(x/2).代入可以消根号,其他自己看着办吧.
=-sinx/(1-cosx)*√[(1/cosx-1)/(1/cosx+1)]]=-sinx/(1-cosx)*[(1-cosx)/|sinx|]sinx>0=-1sinx再问:化简,不用求值再答:
[0,1]
y=根号下(sin^2(x/2)-2sin(x/2)cos(x/2)+cos^2(x/2))+根号下(sin^2(x/2)+2sin(x/2)cos(x/2)+cos^2(x/2))=根号下【(sin
设根号下((1+sinX)除以(1-sinX))-根号下((1-sinX)除以(1+sinX))=y,则y的平方=……=4(tanx)^2所以y=±2tanx再问:完全平方后如何化简再答:通分,利用正
定义域是Ry>=0y^2=1+sinx+1-sinx+2√(1-sinx)(1+sinx)=2+2√[1-(sinx)^2]=2+2√(cosx)^2=2+2|cosx|0
根号下:tanx-sinx除以tanx+sinx=根号下:sinx-sinxcosx除以sinx+sinxcosx=根号下:1-cosx除以1+cosx=根号下:sin²x除以(1+cosx
2√2sin(π/6-x)