1.求y=3cos(-3x-π/4)在x∈(-π,π)的单调递增区间?
问题描述:
1.求y=3cos(-3x-π/4)在x∈(-π,π)的单调递增区间?
2.cos(α-π/2)/sin(5π/2+α)×sin(α-π)×cos(2π-α)等于多少 我写出来这题=-sin²α不知道对不对?
答
解1:y=3cos(-3x-π/4)y=3cos(3x+π/4)y'=-9sin(3x+π/4)(1)令:y'>0,即:-9sin(3x+π/4)>0sin(3x+π/4)<0(2k+1)π<3x+π/4<(2k+2)π2kπ/3+π/4<x<2kπ/3+7π/12因为:x∈(-π,π)所以:-5π/12<x<-π/12,...y的单调增区间是:x∈(-5π/12,-π/12)∪(π/4,7π/12)∪(11π/12,π) 您好像漏了一个是的,你说得对。忽略了k=-2时的情形了,谢谢你。 y的单调增区间是:x∈(-π,-3π/4)∪(-5π/12,-π/12)∪(π/4,7π/12)∪(11π/12,π)