In the context of fair cake-cutting, a super-proportional division is a division in which each partner receives strictly more than 1/n of the resource by their own subjective valuation. A super-proportional division is better than a proportional division, in which each partner is guaranteed to receive at least 1/n. However, in contrast to proportional division, a super-proportional division does not always exist. When all partners have exactly the same value functions, the best we can do is give each partner exactly 1/n. A necessary condition for the existence of a super-proportional division is, therefore, that not all partners have the same value measure. A surprising fact is that, when the valuations are additive and non-atomic, this condition is also sufficient. I.e., when there are at least two partners whose value function is even slightly different, then there is a super-proportional division in which all partners receive more than 1/n.
Conjecture
The existence of a super-proportional division was first conjectured as early as 1948:
A protocol for finding a super-proportional division was presented in 1986.
Single piece of disagreement
Let C be the entire cake. The protocol starts with a specificpiece of cake, say X ⊆ C, which is valued differently by two partners. Call these partners Alice and Bob. Let a=VAlice and b=VBob and assume w.l.o.g. that b>a.
Two pieces of disagreement
Find a rational number between b and a, say p/q such that b > p/q > a. Ask Bob to divide X to pequal parts and divide C \ X to q-p equal parts. By our assumptions, Bob values each piece of X as more than 1/q and each piece of C \ X as less than 1/q. But for Alice, at least one piece of X must have a value of less than 1/q and at least one piece of C\X must have a value of more than 1/q. So now we have two pieces, Y and Z, such that:
Super-proportional division for two partners
Let Alice and Bob divide the remainderC \ Y \ Z between them in a proportional manner. Add Z to the piece of Alice and add Y to the piece of Bob. Now each partner thinks that his/her allocation is strictly better than the other allocation, so its value is strictly more than 1/2.
Super-proportional division for ''n'' partners
The extension of this protocol to n partners is based on Fink's "Lone Chooser" protocol. Suppose we already have a super-proportional division to i-1 partners. Now partner #i enters the party and we should give him a small piece from each of the first i-1 partners, such that the new division is still super-proportional. Consider e.g. partner #1. Let d be the difference between partner #1's current value and. Because the current division is super-proportional, we know that d>0. Choose a positive integerq such that: Ask partner #1 to divide his share to pieces which he considers of equal value and let the new partner choose the pieces which he considers to be the most valuable. Partner #1 remains with a value of of his previous value, which was . The first element becomes and the d becomes ; summing them up gives that the new value is more than: of the entire cake. As for the new partner, after having taken q pieces from each of the first i-1 partners, his total value is at least: of the entire cake. This proves that the new division is also super-proportional.
