解个三角函数(1-2sin Xcos X)/(cos^2 X-sin^2 X) == (1-tan X)/(1+tan X)(cos B-1)^2+sin^2 B == 2-2cos B证明左右相等
来源:学生作业帮助网 编辑:六六作业网 时间:2025/01/30 12:56:24
解个三角函数(1-2sinXcosX)/(cos^2X-sin^2X)==(1-tanX)/(1+tanX)(cosB-1)^2+sin^2B==2-2cosB证明左右相等解个三角函数(1-2sinX
解个三角函数(1-2sin Xcos X)/(cos^2 X-sin^2 X) == (1-tan X)/(1+tan X)(cos B-1)^2+sin^2 B == 2-2cos B证明左右相等
解个三角函数
(1-2sin Xcos X)/(cos^2 X-sin^2 X) == (1-tan X)/(1+tan X)
(cos B-1)^2+sin^2 B == 2-2cos B
证明左右相等
解个三角函数(1-2sin Xcos X)/(cos^2 X-sin^2 X) == (1-tan X)/(1+tan X)(cos B-1)^2+sin^2 B == 2-2cos B证明左右相等
(1-2sin Xcos X)/(cos^2 X-sin^2 X)
=(sin^2 X-2sin Xcos X+cos^2 X)/(cos^2 X-sin^2 X)
=(sin X-cos X)^2/(cos X-sin X)(cos X-sin X)
=(cos X-sin X)^2/(cos X-sin X)(cos X+sin X)
=(cos X-sin X)/(cos X+sin X)
=(cos X-cos X*tan X)/(cos X+cos X*tan X)
=cos X(1-tan X)/[cos X(1+tan X)]
=(1-tan X)/(1+tan X)
(cos B-1)^2+sin^2 B
=cos^2 B-2cosB+1+sin^2 B
=cos^2 B+sin^2 B-2cosB+1
=1-2cosB+1
=2-2cosB
解个三角函数(1-2sin Xcos X)/(cos^2 X-sin^2 X) == (1-tan X)/(1+tan X)(cos B-1)^2+sin^2 B == 2-2cos B证明左右相等
∫1/(sin^2xcos^2x)
1-2sin xcos x/cos的平方x
求证 cos*xcos*y + sin*xsin*y + sin*xcos*y + xin*ycos*x = 1cos*xcos*y + sin*xsin*y + sin*xcos*y + sin*ycos*x = 1注意:[*] 的意思是 [ ^2 ]写下左右过程..
∫(1/sin³xcos³x)dx 怎么解
求不定积分(1/sin^2xcos^2x)dx
求∫1/sin^2xcos^2x dx
sin^2xcos^2x不定积分
1/(sin^4 xcos^4 x)积分
sin^2xcos^3x的不定积分,
(1-(sin^4x-sin^2xcos^2x+cos^4x)/sin^2x +3sin^2x
化简[1-(sin^4 x-sin^2 xcos^2 x+cos^4 x)]/(sin^2 x)+3sin^2 x
求证sin^4x+cos^4x=1-2sin^2xcos^2x
sin^4x+cos^4x=1-2sin^2Xcos^2X谢谢额
1-(sin^6x+cos^6x)=3sin^2xcos^2x 如何证明?
积分 sin^4xcos^2x dx利用三角学解以下积分(如图)Hints:sin^4xcos^2x = sin^2x(sinxcosx)^2
sin^4+sin^2xcos^2x+cos^2x 证明 =1
sin^8X+cos^8X+4sin^2Xcos^2x-2sin^4xcos^4X(化简)