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Методы агрегирования рангов×Модель Плaкетта-Льюса×
ОбластьПринятие решенийПринятие решений
СемействоMachine learningRegression model
Год появления20011975
Автор методаDwork, Kumar, Naor & SivakumarRobin Plackett; R. Duncan Luce
ТипCombinatorial ranking methodProbabilistic ranking model
Основополагающий источникDwork, C., Kumar, R., Naor, M., & Sivakumar, D. (2001). Rank aggregation methods for the web. Proceedings of the 10th International Conference on World Wide Web, 613–622. DOI ↗Plackett, R. L. (1975). The analysis of permutations. Journal of the Royal Statistical Society: Series C, 24(2), 193–202. DOI ↗
Другие названияRank Fusion, Order Aggregation, Preference Aggregation, Sıralama BirleştirmeLuce's Choice Axiom Model, Rank-Ordered Logit Model, Exploded Logit Model, Sıralama Tercih Modeli
Связанные23
СводкаRank Aggregation is a family of methods that combine multiple ranked lists of alternatives into a single consensus ranking. Formally studied in the context of web search by Dwork, Kumar, Naor, and Sivakumar (2001), these methods address the problem of synthesizing divergent preference orderings from multiple sources — such as search engines, expert judges, or voter ballots — into one coherent, representative ordering that minimizes overall disagreement across the input rankings.The Plackett-Luce model is a probabilistic framework for analysing and predicting rank-ordered data. Introduced by Robin Plackett (1975) — building on R. Duncan Luce's earlier axiom of choice (1959) — it models the probability of any complete ranking of items as a sequential selection process, where each item's chance of being chosen at each position is proportional to its latent worth parameter. It is widely used in preference learning, recommender systems, and choice modelling.
ScholarGateНабор данных
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  3. PUBLISHED
  1. v1
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ScholarGateСравнение методов: Rank Aggregation · Plackett-Luce Model. Получено 2026-06-18 из https://scholargate.app/ru/compare