lg(sin2x-cos2x)的定义域范围是多少
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y=√2×sin2x×cos2x化简得y=√2/2*sin4x所以函数的振幅为√2/2周期为π/2当x∈(kπ/2-π/8,kπ/2+π/8)时为增函数当x∈(kπ/2+π/8,kπ/2+3π/8)时
y=4sin2xcos2x-4cos²2x=2*(2sin2xcos2x)-4(1+cos4x)/2=2sin4x-2cos4x-2=2√2(√2/2*sin4x-√2/2*cos4x)-2
sin4x-sin2x+cos2x=2sin2x*cos2x-2sinxcosx+2cos^2x-1=4sinxcosx(2cos^2x-1)-2sinxcosx+2cos^2x-1剩下的就是用cos
sin2x=2sinxcosxcos2x中2是指数的话,可以表示为(cosx)^2,1-(cosx)^2=(sinx)^2即:sinx的平方所以y=2sinxcosx/(sinx)^2=2cotx其导
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
由题意可得:sin2x-cos2x>0,即cos2x-sin2x<0,由二倍角公式可得cos2x<0,所以π2+2kπ<2x<3π2+2kπ,k∈Z,∴kπ+π4<x<kπ+3π4,k∈Z,故答案为:
已知sin2x=2sinxcosxcos2x=(cosx)^2-(sinx)^2所以1-cos2x=2(sinx)^21+cos2x=2(cosx)^2所以(1+cos2x)/2cosx=sin2x/
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
1+sin2x-cos2x=1+2sinxcosx-1+2sinx^2=2sinx(cosx+sinx)1+sin2x+cos2x=1+2sinxcosx+2cosx^2-1=2cosx(cosx+s
由y=sin2x+sin2x+3cos2x=1+sin2x+2cos2x=1+sin2x+(1+cos2x)=2sin(2x+π4)+2(1)当sin(2x+π4)=−1时,y最小=2-2,此时,由2
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
(1)∵y=sin2x+sin2x+3cos2x=sin2x+cos2x+2=2sin(2x+π4)+2,∴当2x+π4=2kπ-π2(k∈Z),即x=kπ-3π8(k∈Z)时,f(x)取得最小值2-
sinx/cosx=tanx所以sin2x/cos2x=tan2x
sin2x+cos2x=√2(√2/2sin2x+√2/2*cos2x)=√2(cospai/4sin2x+sinpai/4cos2x)=√2sin(2x+pai&#4
sinx×cos2x-sin2x×cosx=sin(x-2x)=-sinx
1/2sin4x
sin²2x+sin2x+cos2x=1sn2x+cos2x=1-sin²2x=cos²2xsin2x=cos²2x-cos2x----------------
(cos2x-sin2x)/[(1-cos2x)(1-tan2x)]=cos2x[1-(sin2x/cos2x)]/[(1-cos2x)(1-tan2x)](分母部分提出cos2x)=cos2x(1-