(x^2-16)^1/2微分為何?[x^2-16]開根號的微分?
回答 (1)
2016-12-04 11:59 pm
Sol
d(x^2-16)^(1/2)/dx
=[d(x^2-16)^(1/2)/d(x^2-16)]*[d(x^2-16)/dx]
=[(1/2)*1(x^2-16)^(1/2)]*2x
=x/(x^2-16)^(1/2)
d(x^2-16)^(1/2)/dx
=[d(x^2-16)^(1/2)/d(x^2-16)]*[d(x^2-16)/dx]
=[(1/2)*1(x^2-16)^(1/2)]*2x
=x/(x^2-16)^(1/2)
收錄日期: 2021-04-30 21:58:18
原文連結 [永久失效]:
https://hk.answers.yahoo.com/question/index?qid=20161204153838AA8oO2A