Question:
Let $k, a_2, a_3$ and $k, b_2, b_3$ be nonconstant geometric sequences with different common ratios.  If  \[a_3-b_3=2(a_2-b_2),\]then what is the sum of the common ratios of the two sequences?

Answer:
Let the common ratio of the first sequence be $p$ and the common ratio of the second sequence be $r$.  Then the equation becomes

$$kp^2-kr^2=2(kp-kr)$$Dividing both sides by $k$ (since the sequences are nonconstant, no term can be $0$), we get

$$p^2-r^2=2(p-r)$$The left side factors as $(p-r)(p+r)$.  Since $p\neq r$, we can divide by $p-r$ to get

$$p+r=\boxed{2}$$