请问这道高数题目,这两步怎么化的,求大佬解答,谢谢啦
2个回答
展开全部
=π/2∫(0,π/2)(sin2x/2)dx
-π/2∫(π/2,π)(sin2x/2)dx
=-π/2×1/4cos2x丨(0,π/2)
+π/2×1/4cos2x丨(π/2,π)
=π/8+π/8+π/8+π/8
=π/2
解法分析:利用解法的性质,进行积分,就可以很快得出结果。
-π/2∫(π/2,π)(sin2x/2)dx
=-π/2×1/4cos2x丨(0,π/2)
+π/2×1/4cos2x丨(π/2,π)
=π/8+π/8+π/8+π/8
=π/2
解法分析:利用解法的性质,进行积分,就可以很快得出结果。
已赞过
已踩过<
评论
收起
你对这个回答的评价是?
展开全部
(π/2)∫(0->π) |cosx| sinx dx
=(π/2)∫(0->π/2) cosx. sinx dx -(π/2)∫(π/2->π) cosx. sinx dx
=(π/2)∫(0->π/2) sinx dsinx -(π/2)∫(π/2->π) sinx dsinx
=(π/4) [ (sinx)^2]|(0->π/2) -(π/4) [ (sinx)^2]|(π/2->π)
=(π/4)(1-0) -(π/4)(0-1)
=π/2
=(π/2)∫(0->π/2) cosx. sinx dx -(π/2)∫(π/2->π) cosx. sinx dx
=(π/2)∫(0->π/2) sinx dsinx -(π/2)∫(π/2->π) sinx dsinx
=(π/4) [ (sinx)^2]|(0->π/2) -(π/4) [ (sinx)^2]|(π/2->π)
=(π/4)(1-0) -(π/4)(0-1)
=π/2
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
