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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 101150 of 753 papers

TitleStatusHype
Building Cross-Sectional Systematic Strategies By Learning to Rank0
Calibrating Explore-Exploit Trade-off for Fair Online Learning to Rank0
Can Perturbations Help Reduce Investment Risks? Risk-Aware Stock Recommendation via Split Variational Adversarial Training0
Cascade Model-based Propensity Estimation for Counterfactual Learning to Rank0
Cascading Bandits: Learning to Rank in the Cascade Model0
Cascading Bandits Robust to Adversarial Corruptions0
Cascading Non-Stationary Bandits: Online Learning to Rank in the Non-Stationary Cascade Model0
Challenges in clinical natural language processing for automated disorder normalization0
Chinese-to-Japanese Patent Machine Translation based on Syntactic Pre-ordering forWAT 20150
Chinese-to-Japanese Patent Machine Translation based on Syntactic Pre-ordering for WAT 20160
A Hierarchical Semantics-Aware Distributional Similarity Scheme0
Choice by Elimination via Deep Neural Networks0
CICBUAPnlp: Graph-Based Approach for Answer Selection in Community Question Answering Task0
Classification and Learning-to-rank Approaches for Cross-Device Matching at CIKM Cup 20160
Click-aware purchase prediction with push at the top0
Coarse-to-Fine Contrastive Learning on Graphs0
Drug Selection via Joint Push and Learning to Rank0
Co-BERT: A Context-Aware BERT Retrieval Model Incorporating Local and Query-specific Context0
Communication-Efficient Algorithms for Statistical Optimization0
Community-based Cyberreading for Information Understanding0
Compound virtual screening by learning-to-rank with gradient boosting decision tree and enrichment-based cumulative gain0
Computational and Statistical Tradeoffs in Learning to Rank0
Consistent Position Bias Estimation without Online Interventions for Learning-to-Rank0
Constrained Multi-Task Learning for Automated Essay Scoring0
Content-Based Features to Rank Influential Hidden Services of the Tor Darknet0
Content Selection for Real-time Sports News Construction from Commentary Texts0
Efficient and Effective Tree-based and Neural Learning to Rank0
Boosting Cross-Language Retrieval by Learning Bilingual Phrase Associations from Relevance Rankings0
Boosting API Recommendation with Implicit Feedback0
A Network Framework for Noisy Label Aggregation in Social Media0
Block-distributed Gradient Boosted Trees0
Biomedical Document Retrieval for Clinical Decision Support System0
A Generative Re-ranking Model for List-level Multi-objective Optimization at Taobao0
Who You Are Matters: Bridging Topics and Social Roles via LLM-Enhanced Logical Recommendation0
Bi-Encoders based Species Normalization -- Pairwise Sentence Learning to Rank0
AliExpress Learning-To-Rank: Maximizing Online Model Performance without Going Online0
Beyond Pairwise Learning-To-Rank At Airbnb0
Beihang-MSRA at SemEval-2017 Task 3: A Ranking System with Neural Matching Features for Community Question Answering0
An Early FIRST Reproduction and Improvements to Single-Token Decoding for Fast Listwise Reranking0
Activity Auto-Completion: Predicting Human Activities From Partial Videos0
DocChat: An Information Retrieval Approach for Chatbot Engines Using Unstructured Documents0
An Attention-Based Deep Net for Learning to Rank0
BayesCNS: A Unified Bayesian Approach to Address Cold Start and Non-Stationarity in Search Systems at Scale0
A Frequency-Based Learning-To-Rank Approach for Personal Digital Traces0
BanditRank: Learning to Rank Using Contextual Bandits0
Bandit Learning to Rank with Position-Based Click Models: Personalized and Equal Treatments0
An Analysis of Untargeted Poisoning Attack and Defense Methods for Federated Online Learning to Rank Systems0
Position Bias Estimation for Unbiased Learning-to-Rank in eCommerce Search0
Analysis of Regression Tree Fitting Algorithms in Learning to Rank0
Balancing Novelty and Salience: Adaptive Learning to Rank Entities for Timeline Summarization of High-impact Events0
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