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1. Fingerprinting Codes Meet Geometry: Improved Lower Bounds for Private Query Release and Adaptive Data Analysis

2. Privacy-Computation trade-offs in Private Repetition and Metaselection

3. Adaptive Batch Size for Privately Finding Second-Order Stationary Points

4. Improved Sample Complexity for Private Nonsmooth Nonconvex Optimization

5. Instance-Optimal Private Density Estimation in the Wasserstein Distance

6. Scalable Private Search with Wally

7. Private Online Learning via Lazy Algorithms

8. Private Vector Mean Estimation in the Shuffle Model: Optimal Rates Require Many Messages

9. PINE: Efficient Norm-Bound Verification for Secret-Shared Vectors

10. Federated Learning with Differential Privacy for End-to-End Speech Recognition

11. Mean Estimation with User-level Privacy under Data Heterogeneity

12. Samplable Anonymous Aggregation for Private Federated Data Analysis

13. Differentially Private Heavy Hitter Detection using Federated Analytics

14. Fast Optimal Locally Private Mean Estimation via Random Projections

15. Near-Optimal Algorithms for Private Online Optimization in the Realizable Regime

16. Concentration of the Langevin Algorithm's Stationary Distribution

17. Private Federated Statistics in an Interactive Setting

18. Private Online Prediction from Experts: Separations and Faster Rates

19. Subspace Recovery from Heterogeneous Data with Non-isotropic Noise

20. Resolving the Mixing Time of the Langevin Algorithm to its Stationary Distribution for Log-Concave Sampling

21. Stronger Privacy Amplification by Shuffling for R\'enyi and Approximate Differential Privacy

22. FLAIR: Federated Learning Annotated Image Repository

23. Privacy of Noisy Stochastic Gradient Descent: More Iterations without More Privacy Loss

24. Optimal Algorithms for Mean Estimation under Local Differential Privacy

25. Private Frequency Estimation via Projective Geometry

26. Differential Secrecy for Distributed Data and Applications to Robust Differentially Secure Vector Summation

27. Private Adaptive Gradient Methods for Convex Optimization

28. Private Stochastic Convex Optimization: Optimal Rates in $\ell_1$ Geometry

29. Lossless Compression of Efficient Private Local Randomizers

30. Hiding Among the Clones: A Simple and Nearly Optimal Analysis of Privacy Amplification by Shuffling

31. When is Memorization of Irrelevant Training Data Necessary for High-Accuracy Learning?

32. On the Error Resistance of Hinge Loss Minimization

33. Faster Differentially Private Samplers via R\'enyi Divergence Analysis of Discretized Langevin MCMC

34. Stochastic Optimization with Laggard Data Pipelines

35. Stability of Stochastic Gradient Descent on Nonsmooth Convex Losses

36. Private Stochastic Convex Optimization: Optimal Rates in Linear Time

37. Characterizing Structural Regularities of Labeled Data in Overparameterized Models

38. Encode, Shuffle, Analyze Privacy Revisited: Formalizations and Empirical Evaluation

39. Computational Separations between Sampling and Optimization

40. R\'enyi Differential Privacy of the Sampled Gaussian Mechanism

41. Private Stochastic Convex Optimization with Optimal Rates

42. Semi-Cyclic Stochastic Gradient Descent

43. Better Algorithms for Stochastic Bandits with Adversarial Corruptions

44. Amplification by Shuffling: From Local to Central Differential Privacy via Anonymity

45. Private Selection from Private Candidates

46. Privacy Amplification by Iteration

47. Online Linear Quadratic Control

48. Adversarially Robust Generalization Requires More Data

49. Online learning over a finite action set with limited switching

50. Scalable Private Learning with PATE

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