#(3-x)/((x^2+3)(x+3))=(Ax+B)/(x^2+3)+C/(x+3)=#
#=((Ax+B)(x+3)+C(x^2+3))/((x^2+3)(x+3))=#
#=(Ax^2+Bx+3Ax+3B+Cx^2+3C)/((x^2+3)(x+3))=#
#=((A+C)x^2+(B+3A)x+(3B+3C))/((x^2+3)(x+3))#
#A+C=0 => A=-C#
#B+3A=-1 => B=-1+3C#
#3B+3C=3 => B+C=1#
#-1+3C+C=1 => 4C=2 => C=1/2#
#A=-1/2#
#B=1-C=1/2#
#I=int (3-x)/((x^2+3)(x+3))dx = int (-1/2x+1/2)/(x^2+3)dx + 1/2intdx/(x+3)#
#I=-1/4int(2xdx)/(x^2+3)+1/2intdx/(x^2+(sqrt3)^2)+1/2ln|x+3|#
#I= -1/4ln(x^2+3)+1/(2sqrt3)arctan(x/sqrt3) +1/2ln|x+3| +C#