如图
原式=1/2(1-2sin平方x)=1/2cos2x
就是定积分的正常运算啊,把上下边界代进上面一行的式子: =(E/π)[-cos(n+?)π/(n+?)+cos(n-?)π/(n-?)] -(E/π)[-cos(n+?)·0/(n+?)+cos(n-?)·0/(n-?)] =(E/π)[0/(n+?)+0/(n-?)] -(E/π)[-1/(n+?)+1/(n-?)] =(E/π)[1/(n+?)-1/(n-?)] =-4E/[(4n2-1)π]
同问
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