y'=2(x+2)*(x-1)^3+(x+2)^2 *3(x-1)^2=(x+2)(x-1)^2*(2x-2+3x+6)=(x+2)(5x+4)(x-1)^2零点为:-2,-4/5,1在区间(负无穷,-2)及(-4/5,正无穷)上,f'(x)>=0f(x)单调递增,同理,在区间(-2,-4/5)上,f'(x)
