2. 考研
  3. (1)设,则a=_______. (2)设x-(a+bcosx)sinx为x的5阶无穷小,则a=______,b=_________. (3)设当x→0时,f(x)=∫0x2ln(1+t)dt~g(x)=xa(ebx-1),则a=________,b=__

(1)设,则a=_______. (2)设x-(a+bcosx)sinx为x的5阶无穷小,则a=______,b=_________. (3)设当x→0时,f(x)=∫0x2ln(1+t)dt~g(x)=xa(ebx-1),则a=________,b=__

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问题 (1)设,则a=_______.
(2)设x-(a+bcosx)sinx为x的5阶无穷小,则a=______,b=_________.
(3)设当x→0时,f(x)=∫0x2ln(1+t)dt~g(x)=xa(ebx-1),则a=________,b=________.
选项
答案ln2;[*];3,[*]
解析 (1)=e3a,由e3a=8,得a=ln2.
(2)x-(a+bcosx)sinx
=x-asinx-sin2x
=x-a[(x-+o(x5)]-+o(x5)]
=(1-a-b)x+x5+o(x5),


解得a=,b=
(3)由

再由g(x)=xa(ebx-1)~bxa+1得a=3,b=
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考研数学二

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