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1. Analysis of the ICML 2023 Ranking Data: Can Authors' Opinions of Their Own Papers Assist Peer Review in Machine Learning?

2. Position Paper: Why the Shooting in the Dark Method Dominates Recommender Systems Practice; A Call to Abandon Anti-Utopian Thinking

3. Position Paper: Generalized grammar rules and structure-based generalization beyond classical equivariance for lexical tasks and transduction

4. Neural Architecture Search: Insights from 1000 Papers

5. Pen and Paper Exercises in Machine Learning

6. You Are the Best Reviewer of Your Own Papers: An Owner-Assisted Scoring Mechanism

7. Intelligent Arxiv: Sort daily papers by learning users topics preference

8. Method and Dataset Mining in Scientific Papers

9. $hv$-Block Cross Validation is not a BIBD: a Note on the Paper by Jeff Racine (2000)

10. The Role of Publicly Available Data in MICCAI Papers from 2014 to 2018

11. On Estimating Maximum Sum Rate of MIMO Systems with Successive Zero-Forcing Dirty Paper Coding and Per-antenna Power Constraint

12. Viability of machine learning to reduce workload in systematic review screenings in the health sciences: a working paper

13. Topological based classification of paper domains using graph convolutional networks

14. Should we Reload Time Series Classification Performance Evaluation ? (a position paper)

15. Learning Taxonomies of Concepts and not Words using Contextualized Word Representations: A Position Paper

16. Machine Learning in High Energy Physics Community White Paper

17. On Estimating Maximum Sum Rate of MIMO Systems with Successive Zero-Forcing Dirty Paper Coding and Per-antenna Power Constraint

18. Conference paper

19. Should we Reload Time Series Classification Performance Evaluation ? (a position paper)

20. When SMILES have Language: Drug Classification using Text Classification Methods on Drug SMILES Strings

21. The Central Role of the Loss Function in Reinforcement Learning

22. Gaussian Process Upper Confidence Bounds in Distributed Point Target Tracking over Wireless Sensor Networks

23. A Primer on Variational Inference for Physics-Informed Deep Generative Modelling

24. SEF: A Method for Computing Prediction Intervals by Shifting the Error Function in Neural Networks

25. Centralized Selection with Preferences in the Presence of Biases

26. Notes on Sampled Gaussian Mechanism

27. A naive aggregation algorithm for improving generalization in a class of learning problems

28. Fairness in Survival Analysis with Distributionally Robust Optimization

29. Evaluation of Prosumer Networks for Peak Load Management in Iran: A Distributed Contextual Stochastic Optimization Approach

30. Statistical and Geometrical properties of regularized Kernel Kullback-Leibler divergence

31. Reproduction of IVFS algorithm for high-dimensional topology preservation feature selection

32. Shapley Marginal Surplus for Strong Models

33. Defining and Measuring Disentanglement for non-Independent Factors of Variation

34. Operator Learning Using Random Features: A Tool for Scientific Computing

35. Kernel Density Estimators in Large Dimensions

36. Scalable and Adaptive Spectral Embedding for Attributed Graph Clustering

37. A Survey on Differential Privacy for SpatioTemporal Data in Transportation Research

38. An Interpretable Neural Network for Vegetation Phenotyping with Visualization of Trait-Based Spectral Features

39. Meta-Analysis with Untrusted Data

40. Advanced Graph Clustering Methods: A Comprehensive and In-Depth Analysis

41. A Coding-Theoretic Analysis of Hyperspherical Prototypical Learning Geometry

42. Improving Out-of-Distribution Detection by Combining Existing Post-hoc Methods

43. Optimal spanning tree reconstruction in symbolic regression

44. Zero-Inflated Tweedie Boosted Trees with CatBoost for Insurance Loss Analytics

45. A review of feature selection strategies utilizing graph data structures and knowledge graphs

46. Explainable Artificial Intelligence and Multicollinearity : A Mini Review of Current Approaches

47. Generative vs. Discriminative modeling under the lens of uncertainty quantification

48. Interventional Causal Discovery in a Mixture of DAGs

49. Bridging the Gap: Rademacher Complexity in Robust and Standard Generalization

50. A Unified View of Group Fairness Tradeoffs Using Partial Information Decomposition