不定积分,求大神解一下,这道题?谢谢啦
1个回答
展开全部
∫1/(x^2-x-6) dx = ∫ 1/[(x+2)(x-3)] dx = 1/5 * ∫ [1/(x-3) - 1/(x+2)]dx
=1/5 * [ln(x-3) - ln (x+2)] + C
=1/5 * ln [(x-3)/(x+2) ]+ C
=1/5 * [ln(x-3) - ln (x+2)] + C
=1/5 * ln [(x-3)/(x+2) ]+ C
追问
你好,能问下1/5是拿来来的鸭
追答
1/[(x+2)(x-3)] =(1/5 * 5)/[(x+2)(x-3)] = 1/5 * [(x+2)-(x-3)]/[(x+2)(x-3)]
=1/5 * [1/(x-3) - 1/(x+2)]
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