cos2x加sin2x等于-搜答案-智慧作业帮

(1)根据图信息可知sina=4/5cosa=3/5∴(sina^2+sin2a)/(cosa^2+cos2a)=(sina^2+2sinacosa)/(cosa^2+cosa^2-sina^2)=(

f(sinx)=cos2x=1-2sin^2xf(x)=1-2x^2f(cosx)=1-2cos^2x=-cos2x选C

第一个式子等於（1+cos2x）/2sin2x=1-cosx是错的应该是sin2x=2sinxcosx

sin2x-cos2x=0

sin2x=cos2xsin2x^2+cos2x^2=1∴sin2x=cos2x=根号2/2∴2x=n*pi+pi/4（n为整数）∴x=n*pi/2+pi/8

sin^2x+cos^2x=1sin^2x+9sin^2x=1sin^2x=1/10Cos2X+Sin2X=cos^2x-sin^2x+2sinxcosx=9sin^2x-sin^2x+6sin^2x

因为tanx=sinx/cosx.所以tanx+1/tanx=4变形为sinx/cosx+cosx/sinx=4.通分得(sinx^2+cosx^2)/sinxcosx=4.又因为2sinxcosx=

x=0代入f(0)=cos0-sin0+2(3sin0cos0+1)=1-0+2(0+1)=3

化简sin2x+cos2x

sin2x+cos2x=根2·【cos45·sin2X+sin45·cos2X】=根2·sin[2X+45]

原式＝(-2cos2x/1+sin2x+cos2x)+1=(-2cos^2x+2sin^2x)/(1+2sinxcosx+cos^2x-sin^2x)+1=[2(sinx+cosx)(sinx-cos

解题思路：灵活利用三角函数的公式进行化简，最后套“周期公式”。解题过程：varSWOC={};SWOC.tip=false;try{SWOCX2.OpenFile("http://dayi.prced

题目条件不充分啊cos2x+sin2x=1cos2x=cos^2x-sin^2xsin2x=2sinxcosxcos2x+sin2x=cos^2x-sin^2x+2sinxcosx

1+sin2x-cos2x=1+2sinxcosx-1+2sinx^2=2sinx(cosx+sinx)1+sin2x+cos2x=1+2sinxcosx+2cosx^2-1=2cosx(cosx+s

因为tanx=2所以tan2x=2tanx/[1-(tanx)^2]=2*2/(1-2^2)=-4/3所以(sin2x+cos2x)/(cos2x-sin2x)=[(sin2x/cos2x)+(cos

sinx/cosx=tanx所以sin2x/cos2x=tan2x

sin2x＋cos2x＝√2（√2＆＃47；2sin2x＋√2＆＃47；2＊cos2x）＝√2（cospai＆＃47；4sin2x＋sinpai＆＃47；4cos2x）＝√2sin（2x＋pai＆＃4

设f(x)=sinx^2+sin2x-2cosx^2,此题实际上就是求f(x)的值域,具体解答如下:\x0df(x)=sinx^2+sin2x-2cosx^2\x0d=(sinx^2+cosx^2)+

sinx×cos2x-sin2x×cosx

sinx×cos2x-sin2x×cosx=sin(x-2x)=-sinx

1/2sin4x

sinx^2+cosx^2=1,这就相当于一个公式,中间的变数x当然可以换成任何值了!

由题目可得（1）①（sin2x）²＞（cos2x）²解得π/8+kπ/2＜x＜3π/8+kπ/2k∈Z②（sin2x）²＜（cos2x）²解得-π/8+kπ/2