PAPER DIGEST
Most Influential AISTATS 2015 Paper · 2026-03 edition

Falling Rule Lists

Fulton Wang; Cynthia Rudin

Venue
Conference on Artificial Intelligence and Statistics (AISTATS) 2015
Recognition
Most Influential AISTATS 2015 Paper (Rank No. 4)
Edition
2026-03
Impact factor
6
Certificate ID
6e7e3ff011dc022e

Abstract

Falling rule lists are classification models consisting of an ordered list of if-then rules, where (i) the order of rules determines which example should be classified by each rule, and (ii) the estimated probability of success decreases monotonically down the list. These kinds of rule lists are inspired by healthcare applications where patients would be stratified into risk sets and the highest at-risk patients should be considered first. We provide a Bayesian framework for learning falling rule lists that does not rely on traditional greedy decision tree learning methods.

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