lim(x→0).(arctanx/x)的1/x^2次方=?题在为定式极限中,目测要用洛必达法则
来源:学生作业帮助网 编辑:六六作业网 时间:2025/02/07 10:28:07
lim(x→0).(arctanx/x)的1/x^2次方=?题在为定式极限中,目测要用洛必达法则lim(x→0).(arctanx/x)的1/x^2次方=?题在为定式极限中,目测要用洛必达法则lim(
lim(x→0).(arctanx/x)的1/x^2次方=?题在为定式极限中,目测要用洛必达法则
lim(x→0).(arctanx/x)的1/x^2次方=?题在为定式极限中,目测要用洛必达法则
lim(x→0).(arctanx/x)的1/x^2次方=?题在为定式极限中,目测要用洛必达法则
x→0
lim (arctanx/x)^(1/x^2)
=lim e^ln (arctanx/x)^(1/x^2)
=e^lim ln (arctanx/x)^(1/x^2)
考虑
lim ln (arctanx/x)^(1/x^2)
=lim ln(arctanx/x) / x^2
=lim ln(1+arctanx/x-1) / x^2
根据等价无穷小:ln(1+x)~x
=lim (arctanx/x - 1) / x^2
=lim (arctanx-x) / x^3
该极限为0/0型,根据L'Hospital法则
=lim (arctanx-x)' / (x^3)'
=lim (1/(1+x^2) - 1) / 3x^2
=lim (1-1-x^2) / (1+x^2)(3x^2)
=lim -(x^2) / (3x^2)(1+x^2)
=lim -1 / 3(1+x^2)
=-1/3
故,原极限=e^(-1/3)
有不懂欢迎追问
lim(x+arctanx)/(x-arctanx) (x→∞)
求lim(x→0)arctanx/x的极限,
求极限lim(x→0)sinxsin(1/x);lim(x→∞)(arctanx/x)
lim(n趋近于0)(arctanx)/x
lim(arctanx/sinx) x->0
lim(x→0 )(arctanx/x)^(1/x^2)求极限求lim(x→0 )(arctanx/x)^(1/x^2)
lim(x→0)=(arctanx-x)/ln(1+2x^3)
lim(x→∞)arctanx/x的极限
lim(x→+∞)(2/π*arctanx)^x求极限
求极限lim(2/π*arctanx)^x x→∞
lim(x→+∞)(π/2-arctanx)/(sin1/x)
lim(x→+∞)(π/2-arctanx)/sin1/x,
求极限解题lim(x→∞)=arctanx/x
求lim x趋向于0(arctanx)/(x^+1)
求lim x趋向于0(arctanx)/(x^2+1)
lim(x趋向0)(arctanx-x)/sinx^3
一.x---->0时,证明lim(arctanx)/x=1
lim(x趋向0)arctanx-sinx/x^3