y=sin(2x+π/2)求导 y'(x)=-2sin2x

问题描述:

y=sin(2x+π/2)求导
y'(x)=-2sin2x

y=sin(2x+π/2)
那么
y'=cos(2x+π/2) *(2x+π/2)'
=2cos(2x+π/2)
= -2sin2x
或者
y=sin(2x+π/2)
=cos2x
那么
y'= -sin2x *(2x)'
= -2sin2x