直接套公式就出来了,不需要推导asinx'=1/sqrt(1-x^2)
f(x)在x=π/3处可导,所以极值点π/3是驻点,即f'(π/3)=0f'(x)=acosx+cos(3x),f'(π/3)=a/2-1=0,所以a=2
