求不定积分∫(x^2/(1+x^4))dx
来源:学生作业帮助网 编辑:六六作业网 时间:2024/12/27 16:12:43
求不定积分∫(x^2/(1+x^4))dx求不定积分∫(x^2/(1+x^4))dx求不定积分∫(x^2/(1+x^4))dx令x=tany∫(x^2/(1+x^4))dx=∫(tany^2/(1+t
求不定积分∫(x^2/(1+x^4))dx
求不定积分∫(x^2/(1+x^4))dx
求不定积分∫(x^2/(1+x^4))dx
令x=tany
∫(x^2/(1+x^4))dx
=∫(tany^2/(1+tany^4))*(1/(cosy)^2)dy
=∫(siny)^2/((siny)^4+(cosy)^4) dy
=∫(1/2)(1-cos2y)/(1-4(siny)^2(cosy)^2) dy
=(1/2)∫(1-cos2y)/(1-(sin2y)^2) dy
=(1/2)∫1/(1-(sin2y)^2) dy - (1/2)∫cos2y/(1-(sin2y)^2) dy
=(1/4)∫(1/(cos2y)^2)d(2y) - (1/4)∫1/((1-sin2y)(1+sin2y)) d(sin2y)
=(1/4)tan2y - (1/8)∫(1/(1-sin2y) + 1/(1+sin2y))d(sin2y)
=(1/4)tan2y - (1/8)ln((1+sin2y)/(1-sin2y)) + C
=(1/4)tan2y - (1/4)ln|(siny+cosy)/(siny-cosy)| + C
=(1/2)tany/(1-(tany)^2) - (1/4)ln|(tany+1)/(tany-1)| + C
=(1/2)x/(1-x^2) - (1/4)ln|(x+1)/(x-1)| + C
好像错了哦
求不定积分∫(1-x²)² d x=
求不定积分 ∫(X^2+1)/(X^4+1)dxrt
求不定积分∫1/(x^2+4x+5)dx.
∫x*根号4x^2-1 dx 求不定积分
∫1/(x^2-4x+3)dx,求不定积分,
求不定积分∫(x^2/(1+x^4))dx
求不定积分 ∫ [(x^4)/(1+x^2)]dx=
求不定积分∫x^2/(1-x^4)dx
∫dx/(x^4(1+x^2))求不定积分
∫x^2√(1+x^4)dx 求不定积分!
不定积分习题求不定积分∫(x^2-1)sin2xdx
∫1/x∧8(1-x∧2)d(x),这个不定积分怎么求,
tan^4x求不定积分 1 tan^4x求不定积分 1/【(1-x^2)^3/2】求不定积分
求不定积分∫xdx/(1+x)^4
求不定积分∫dx/(1+x^4)
求不定积分∫(1/x^2)arctanxdx
∫(x-1)^2dx,求不定积分,
求∫(2x+1)dx不定积分