如图,高数第一章,请问怎么求的a和b?
2个回答
展开全部
x->0
f(x)=∫0->x^2) ln(1+t) dt ~ g(x) = x^a.( e^(bx) -1 )
To find : a,b
solution
t->0
ln(1+t) = t +o(t)
f(x)
=∫0->x^2) ln(1+t) dt
=∫0->x^2) ( t+o(t) ) dt
=(1/2)x^4 +o(x^4)
x->0
e^(bx)-1 = bx +o(x)
x^a.( e^(bx) -1 ) = bx^(a+1) +o(x^(a+1))
f(x)=∫0->x^2) ln(1+t) dt ~ g(x) = x^a.( e^(bx) -1 )
(1/2)x^4 +o(x^4) =bx^(a+1) +o(x^(a+1))
b=1/2 and a=3
f(x)=∫0->x^2) ln(1+t) dt ~ g(x) = x^a.( e^(bx) -1 )
To find : a,b
solution
t->0
ln(1+t) = t +o(t)
f(x)
=∫0->x^2) ln(1+t) dt
=∫0->x^2) ( t+o(t) ) dt
=(1/2)x^4 +o(x^4)
x->0
e^(bx)-1 = bx +o(x)
x^a.( e^(bx) -1 ) = bx^(a+1) +o(x^(a+1))
f(x)=∫0->x^2) ln(1+t) dt ~ g(x) = x^a.( e^(bx) -1 )
(1/2)x^4 +o(x^4) =bx^(a+1) +o(x^(a+1))
b=1/2 and a=3
已赞过
已踩过<
评论
收起
你对这个回答的评价是?
推荐律师服务:
若未解决您的问题,请您详细描述您的问题,通过百度律临进行免费专业咨询