设f(x)=
{xe-x2,x≥0,
{1/(1+cosx),-1≤x<0,
求∫14f(x-2)dx.
设f(x)=
{xe-x2,x≥0,
{1/(1+cosx),-1≤x<0,
求∫14f(x-2)dx.
【正确答案】:令x-2=t,则 ∫14f(x-2)dx=∫-12f(t)dt =∫-10[1/(1+cost)]dt+∫02te-t2dt =1/2∫-10[1/cos2(t/2)]dt-1/2∫02e-t2d(-t2) =tan(t/2)|-10-(1/2)e-t2|02=tan(1/2)-(1/2)e-4+1/2.
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