设切点,求切线。循序渐进
供参考,请笑纳。
f(x)=x^3+x-16f'(x)=3x^2+1f'(x) = 43x^2+1=4x =1 or -1f(1)=-14f(-1)=-18切线方程 (1,-14)y+14= 4(x-1)4x-y-18=0切线方程 (-1,-18)y+18= 4(x+1)4x-y-14=0
