Explainable Voting
Dominik Peters, Ariel D. Procaccia, Alexandros Psomas, Zixin Zhou
摘要
The design of voting rules is traditionally guided by desirable axioms. Recent work shows that, surprisingly, the axiomatic approach can also support the generation of explanations for voting outcomes. However, no bounds on the size of these explanations is given; for all we know, they may be unbearably tedious. We prove, however, that outcomes of the important Borda rule can be explained using O(m 2 ) steps, where m is the number of alternatives. Our main technical result is a general lower bound that, in particular, implies that the foregoing bound is asymptotically tight. We discuss the significance of our results for AI and machine learning, including their potential to bolster an emerging paradigm of automated decision making called virtual democracy.
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- Improved Metric Distortion via Threshold ApprovalsElliot Anshelevich, Aris Filos-Ratsikas, Christopher Jerrett, Alexandros A. VoudourisAAAI 2024 · 被引用 10 次
- Explainable and Efficient Randomized Voting RulesSoroush Ebadian, Aris Filos-Ratsikas, Mohamad Latifian, Nisarg ShahNeurIPS 2023 · 被引用 10 次
- On the Complexity of Finding Justifications for Collective DecisionsArthur Boixel, Ronald de HaanAAAI 2021 · 被引用 9 次
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