∫1/x^4dx=-1/3*1/x^3+C
导数逆运算啊!-(1/3)×(x的-3次)+c
∫1/x^4dx=x^(-4+1)/(-4+1)+C=-x^(-3)/3+C
x^n'=nx^(n-1)∫1/x^4dx=-1/(3x^3)+C
