2. 考研
  3. 设 S0=∫02f(x)e-xdx,S1=∫24f(x-2)e-xdx,…,Sn=∫2n2n+2f(x-2n)e-xdx,求.

设 S0=∫02f(x)e-xdx,S1=∫24f(x-2)e-xdx,…,Sn=∫2n2n+2f(x-2n)e-xdx,求.

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问题
S0=∫02f(x)e-xdx,S1=∫24f(x-2)e-xdx,…,Sn=∫2n2n+2f(x-2n)e-xdx,求
选项
答案S0=∫02f(x)e-xdx=∫01xe-xdx+∫12(2-x)e-xdx=[*] 令t=x-2,则S1=e-202f(t)e-tdt=e-2S0, 令t=x-2n,则Sn=e-2n02f(t)e-tdt=e-2nS0, [*]
解析
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考研数学一

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