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数学
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求定积分[上限π,下限0]∫(x^2)sgn(cosx)dx
人气:221 ℃ 时间:2020-02-03 10:08:12
解答
[0,Pi/2]的时候
sgn(cosx) = 1
[Pi/2,Pi]的时候
sgn(cosx) = -1
所以
∫(x^2) sgn(cosx)dx
=∫[0,Pi/2](x^2) dx-∫[Pi/2,Pi](x^2)dx
=Pi^3/24 - Pi^3/3 + Pi^3/24
=-Pi^3/4
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