a+b+c=6
(a-b)/c+(b-c)/a+(c-a)/b=(1+a/b)(1+b/c)(1+c/a)
a²/bc+b²/ca+c²/ab+ab/c²+bc/a²+ca/b²=-2
a³+b³+c³=?

Add 3 to each side of the third equation and then the left side can be factored to yield (a/b + b/c + c/a)*(b/a + c/b + a/c) = 1.  Then b/a + c/b + a/c = -1.

Posted by Brian Smith on 2019-06-30 21:00:24