On A Mallows-type Model For (Ranked) Choices
Yifan Feng, Yuxuan Tang
Abstract
We consider a preference learning setting where every participant chooses an ordered list of most preferred items among a displayed set of candidates. (The set can be different for every participant.) We identify a distance-based ranking model for the population's preferences and their (ranked) choice behavior. The ranking model resembles the Mallows model but uses a new distance function called Reverse Major Index (RMJ). We find that despite the need to sum over all permutations, the RMJ-based ranking distribution aggregates into (ranked) choice probabilities with simple closed-form expression. We develop effective methods to estimate the model parameters and showcase their generalization power using real data, especially when there is a limited variety of display sets.
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Install the CLIlune papers fulltext 48ab1f75-25a1-43dc-a9cf-3f446dcf3c23Cited by top-tier papers3
- Beyond Pairwise: Empowering LLM Alignment With (Ranked) Choice ModelingYuxuan Tang, Yifan FengICLR 2026 · 1 citation
- Generalized Top-k Mallows Model for Ranked ChoicesShahrzad Haddadan, Sara AhmadianNeurIPS 2025
- Nested Elimination: A Simple Algorithm for Best-Item Identification From Choice-Based FeedbackJunwen Yang, Yifan FengICML 2023
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