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Learning-To-Rank

Learning to rank is the application of machine learning to build ranking models. Some common use cases for ranking models are information retrieval (e.g., web search) and news feeds application (think Twitter, Facebook, Instagram).

Papers

Showing 125 of 753 papers

TitleStatusHype
Kamae: Bridging Spark and Keras for Seamless ML PreprocessingCode1
Towards Two-Stage Counterfactual Learning to Rank0
Unidentified and Confounded? Understanding Two-Tower Models for Unbiased Learning to RankCode0
LTRR: Learning To Rank Retrievers for LLMsCode0
Paths to Causality: Finding Informative Subgraphs Within Knowledge Graphs for Knowledge-Based Causal DiscoveryCode0
Bounded-Abstention Pairwise Learning to Rank0
Learning to Rank Chain-of-Thought: An Energy-Based Approach with Outcome Supervision0
VisualQuality-R1: Reasoning-Induced Image Quality Assessment via Reinforcement Learning to RankCode2
Unlearning for Federated Online Learning to Rank: A Reproducibility StudyCode0
Who You Are Matters: Bridging Topics and Social Roles via LLM-Enhanced Logical Recommendation0
Beyond Pairwise Learning-To-Rank At Airbnb0
A Generative Re-ranking Model for List-level Multi-objective Optimization at Taobao0
Breaking Annotation Barriers: Generalized Video Quality Assessment via Ranking-based Self-SupervisionCode0
FAIR-QR: Enhancing Fairness-aware Information Retrieval through Query Refinement0
HAPI: A Model for Learning Robot Facial Expressions from Human PreferencesCode0
Long Context Modeling with Ranked Memory-Augmented Retrieval0
Weak Supervision for Improved Precision in Search Systems0
Entailment-Preserving First-order Logic Representations in Natural Language Entailment0
Unbiased Learning to Rank with Query-Level Click Propensity Estimation: Beyond Pointwise Observation and RelevanceCode0
Improving Similar Case Retrieval Ranking Performance By Revisiting RankSVMCode0
Cascading Bandits Robust to Adversarial Corruptions0
Offline Learning for Combinatorial Multi-armed Bandits0
Reqo: A Robust and Explainable Query Optimization Cost Model0
RAMQA: A Unified Framework for Retrieval-Augmented Multi-Modal Question AnsweringCode0
Learning to Rank Aspects and Opinions for Comparative ExplanationsCode0
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