y=sinx cosx是有界函数

解题思路：考查三角恒等变换解题过程：varSWOC={};SWOC.tip=false;try{SWOCX2.OpenFile("http://dayi.prcedu.com/include/read

y=sinx+cosx+sinxcosx令sinx+cosx=T,(1)由同角三角函数关系sinxcosx=[（sinx+cosx)^2-(sinx^2+cosx^2)]/2把(1)式代入,得sinx

y=sinxcosx-cos^2x=1/2sin2x-1/2(1+cos2x)=1/2(sin2x-cos2x-1)=1/2[√2*sin(2x-派/4)-1]=√2/2*sin(2x-派/4)-1/

y=sinxcosx+sinx+cosx=1/2(2sinxcosx+1-1)+sinx+cosx=1/2(sinx+cosx)^2-1/2+(sinx+cosx)=1/2[(sinx+cosx)^2

如图所示：

分析：由(sinx)^2+(cosx)^2=1进行解析如下,1.y=g(x)=a（sinx+cosx）+2sinxcosx,当a=1时,g(x)=sinx+cosx+2sinxcosx=sinx+co

（1）y=sinxcosx+sinx+cosx令t=sinx+cosx=√2sin(x+∏/4),∴t∈[-√2,√2]则,t^2=(sinx+cosx)^2=1+2sinxcosx则,sinxcos

y=(sinx+cosx)+(sinx+cosx)^2-(sinx^2+cosx^2)=(sinx+cosx)+(sinx+cosx)^2-1设sinx+cosx=t,t=√2sin(x+π/4)∈[

sinx+cosx=√2(sinxcosπ/4+cosxsinπ/4)=√2sin(x+π/4)y=sinx+cosx+2sinxcosx=sinx+cosx+2sinxcosxsin^2x+cos^

y=sinxcosx-1=1/2+sinxcosx-3/2=(1+2sinxcosx)/2-3/2=(sinx+cosx)^2/2-3/2=sin^2(x+π/4)-3/2所以最大值是1-3/2=-1

原式=9-(sinx)平方*cosx平方,令sinx平方=y(0

y=sinxcosx+√3cos²x-√3/2=1/2*(2sinxcosx)+√3/2(2cos²x-1)=1/2*sin2x+√3/2cos2x.正弦余弦的二倍角公式=sin(

sinx+cosx=t√2sin(x+∏/4)=t-√2≤t≤√21+2sinxcosx=t²sinxcosx=(t²-1)/2y=1+sinx+cosx+sinxcosx=1+t

令sinx+cosx=T,1式由同角三角函数关系sinxcosx=[（sinx+cosx)^2-(sinx^2+cosx^2)]/2把1式代入,得sinxcosx=（T^2-1)/2所以y=T+（T^

y=(sinx)^2+sinxcosx+2=(1-cos2x)/2+sin2x/2+2=5/2+(√2/2)[(√2/2)sin2x-(√2/2)cos2x]=5/2+(√2/2)sin(2x-π/4

y=sin²x+sinxcosx+2=(1-cos2x)/2+(sin2x)/2+2=(1/2)(sin2x-cos2x)+5/2=(1/2)*√2(sin2xcosπ/4-cos2xsin

先教你打一下平方吧,不然以后你提问的问题看着很别扭.按住Alt不放,再按小键盘的178.y=cos²x+sinxcosx＝(1+cos2x)/2+sin2x/2=(1/2)+(1/2)(si

y=1+2sinxcosx+sinx+cosx=sin²x+cos²x+2sinxcosx+sinx+cosx=(sinx+cosx)²+sinx+cosx=(sinx+

y=cos²x-sin²x+2sinxcosx=cos2x+sin2x=√2sin(2x+π/4)所以值域为【-√2,√2】