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1. Digital Forgetting in Large Language Models: A Survey of Unlearning Methods

2. Conciliating Privacy and Utility in Data Releases via Individual Differential Privacy and Microaggregation

3. Multi-Task Faces (MTF) Data Set: A Legally and Ethically Compliant Collection of Face Images for Various Classification Tasks

4. An Examination of the Alleged Privacy Threats of Confidence-Ranked Reconstruction of Census Microdata

5. Defending Against Backdoor Attacks by Layer-wise Feature Analysis

6. Database Reconstruction Is Not So Easy and Is Different from Reidentification

7. GRAIMATTER Green Paper: Recommendations for disclosure control of trained Machine Learning (ML) models from Trusted Research Environments (TREs)

8. Enhanced Security and Privacy via Fragmented Federated Learning

9. Bistochastic privacy

10. Defending against the Label-flipping Attack in Federated Learning

11. FL-Defender: Combating Targeted Attacks in Federated Learning

12. A Critical Review on the Use (and Misuse) of Differential Privacy in Machine Learning

13. Circuit-Free General-Purpose Multi-Party Computation via Co-Utile Unlinkable Outsourcing

14. Secure and Privacy-Preserving Federated Learning via Co-Utility

16. Achieving Security and Privacy in Federated Learning Systems: Survey, Research Challenges and Future Directions

17. The Limits of Differential Privacy (and its Misuse in Data Release and Machine Learning)

18. Multi-Dimensional Randomized Response

19. General Confidentiality and Utility Metrics for Privacy-Preserving Data Publishing Based on the Permutation Model

22. Give more data, awareness and control to individual citizens, and they will help COVID-19 containment

23. Generation of Synthetic Trajectory Microdata from Language Models

27. The future of statistical disclosure control

28. How to Avoid Reidentification with Proper Anonymization

29. Measuring Fairness in Machine Learning Models via Counterfactual Examples

32. Connecting Randomized Response, Post-Randomization, Differential Privacy and t-Closeness via Deniability and Permutation

33. Detecting Bad Answers in Survey Data Through Unsupervised Machine Learning

34. -Differential Privacy for Microdata Releases Does Not Guarantee Confidentiality (Let Alone Utility)

37. Give more data, awareness and control to individual citizens, and they will help COVID-19 containment

38. Towards Machine Learning-Assisted Output Checking for Statistical Disclosure Control

39. Explaining Image Misclassification in Deep Learning via Adversarial Examples

40. P

41. Individual Differential Privacy: A Utility-Preserving Formulation of Differential Privacy Guarantees

49. Privacy-Preserving Technologies

50. Privacy-Preserving Computation of the Earth Mover’s Distance

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