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1. AIE: Auction Information Enhanced Framework for CTR Prediction in Online Advertising

2. Prompt Tuning as User Inherent Profile Inference Machine

3. ACE: A Generative Cross-Modal Retrieval Framework with Coarse-To-Fine Semantic Modeling

4. EAGER: Two-Stream Generative Recommender with Behavior-Semantic Collaboration

5. Counteracting Duration Bias in Video Recommendation via Counterfactual Watch Time

6. Source Echo Chamber: Exploring the Escalation of Source Bias in User, Data, and Recommender System Feedback Loop

7. Cocktail: A Comprehensive Information Retrieval Benchmark with LLM-Generated Documents Integration

8. Guaranteeing Accuracy and Fairness under Fluctuating User Traffic: A Bankruptcy-Inspired Re-ranking Approach

9. Retrievable Domain-Sensitive Feature Memory for Multi-Domain Recommendation

10. CELA: Cost-Efficient Language Model Alignment for CTR Prediction

11. Multimodal Pretraining and Generation for Recommendation: A Tutorial

12. Contrastive Quantization based Semantic Code for Generative Recommendation

13. A Survey on the Memory Mechanism of Large Language Model based Agents

14. Bias and Unfairness in Information Retrieval Systems: New Challenges in the LLM Era

15. Recall-Augmented Ranking: Enhancing Click-Through Rate Prediction Accuracy with Cross-Stage Data

16. Multimodal Pretraining, Adaptation, and Generation for Recommendation: A Survey

17. Unlocking the Potential of Multimodal Unified Discrete Representation through Training-Free Codebook Optimization and Hierarchical Alignment

18. Confidence-Aware Multi-Field Model Calibration

19. MART: Learning Hierarchical Music Audio Representations with Part-Whole Transformer

20. Optimal Transport for Treatment Effect Estimation

21. Ten Challenges in Industrial Recommender Systems

23. Uncovering User Interest from Biased and Noised Watch Time in Video Recommendation

24. DisCover: Disentangled Music Representation Learning for Cover Song Identification

25. ReLoop2: Building Self-Adaptive Recommendation Models via Responsive Error Compensation Loop

26. FinalMLP: An Enhanced Two-Stream MLP Model for CTR Prediction

27. FANS: Fast Non-Autoregressive Sequence Generation for Item List Continuation

28. Fair-CDA: Continuous and Directional Augmentation for Group Fairness

30. Study on Mechanical Performance Evolution Law of the Friction Pendulum Bearing Under the Influence of Friction Characteristics of Sliding Interface

31. Multi-sourced Integrated Ranking with Exposure Fairness

32. Bounding System-Induced Biases in Recommender Systems with A Randomized Dataset

33. REASONER: An Explainable Recommendation Dataset with Multi-aspect Real User Labeled Ground Truths Towards more Measurable Explainable Recommendation

35. A Generalized Doubly Robust Learning Framework for Debiasing Post-Click Conversion Rate Prediction

36. Recommendation with User Active Disclosing Willingness

37. Law Article-Enhanced Legal Case Matching: a Causal Learning Approach

38. IntTower: the Next Generation of Two-Tower Model for Pre-Ranking System

39. A Brief History of Recommender Systems

40. Debiased Recommendation with Neural Stratification

41. Multiple Robust Learning for Recommendation

42. Explainable Legal Case Matching via Inverse Optimal Transport-based Rationale Extraction

43. ReLoop: A Self-Correction Continual Learning Loop for Recommender Systems

44. Unbiased Top-k Learning to Rank with Causal Likelihood Decomposition

45. Sequential Recommendation with Causal Behavior Discovery

46. How Pre-trained Language Models Capture Factual Knowledge? A Causal-Inspired Analysis

47. A Semi-Synthetic Dataset Generation Framework for Causal Inference in Recommender Systems

48. On the Opportunity of Causal Learning in Recommendation Systems: Foundation, Estimation, Prediction and Challenges

49. Debiased Recommendation with User Feature Balancing

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