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1. Identification of metabolites in different parts of Juandan Baihe (Lilium lancifolium) by UPLC-Q-TOF-MS and their hypoglycemic activities

2. FedGMark: Certifiably Robust Watermarking for Federated Graph Learning

3. Leveraging Local Structure for Improving Model Explanations: An Information Propagation Approach

4. Understanding Data Reconstruction Leakage in Federated Learning from a Theoretical Perspective

5. Efficient Byzantine-Robust and Provably Privacy-Preserving Federated Learning

6. A Learning-Based Attack Framework to Break SOTA Poisoning Defenses in Federated Learning

7. Universally Harmonizing Differential Privacy Mechanisms for Federated Learning: Boosting Accuracy and Convergence

8. Graph Neural Network Causal Explanation via Neural Causal Models

9. Distributed Backdoor Attacks on Federated Graph Learning and Certified Defenses

10. Graph Neural Network Explanations are Fragile

11. Identifying Backdoored Graphs in Graph Neural Network Training: An Explanation-Based Approach with Novel Metrics

12. Inf2Guard: An Information-Theoretic Framework for Learning Privacy-Preserving Representations against Inference Attacks

13. PoisonedRAG: Knowledge Corruption Attacks to Retrieval-Augmented Generation of Large Language Models

14. Task-Agnostic Privacy-Preserving Representation Learning for Federated Learning Against Attribute Inference Attacks

15. DeepTheft: Stealing DNN Model Architectures through Power Side Channel

16. Text-CRS: A Generalized Certified Robustness Framework against Textual Adversarial Attacks

19. Certifiable Black-Box Attacks with Randomized Adversarial Examples: Breaking Defenses with Provable Confidence

20. A Certified Radius-Guided Attack Framework to Image Segmentation Models

21. IDGI: A Framework to Eliminate Explanation Noise from Integrated Gradients

22. Turning Strengths into Weaknesses: A Certified Robustness Inspired Attack Framework against Graph Neural Networks

24. UniCR: Universally Approximated Certified Robustness via Randomized Smoothing

25. NeuGuard: Lightweight Neuron-Guided Defense against Membership Inference Attacks

27. Bandits for Structure Perturbation-based Black-box Attacks to Graph Neural Networks with Theoretical Guarantees

28. GraphTrack: A Graph-based Cross-Device Tracking Framework

31. Detecting Gender Bias in Transformer-based Models: A Case Study on BERT

33. A Hard Label Black-box Adversarial Attack Against Graph Neural Networks

34. Privacy-Preserving Representation Learning on Graphs: A Mutual Information Perspective

38. Towards Adversarial Patch Analysis and Certified Defense against Crowd Counting

39. Semi-Supervised Node Classification on Graphs: Markov Random Fields vs. Graph Neural Networks

40. Provable Defense against Privacy Leakage in Federated Learning from Representation Perspective

41. GraphFL: A Federated Learning Framework for Semi-Supervised Node Classification on Graphs

42. Almost Tight L0-norm Certified Robustness of Top-k Predictions against Adversarial Perturbations

43. Robust and Verifiable Information Embedding Attacks to Deep Neural Networks via Error-Correcting Codes

44. Efficient, Direct, and Restricted Black-Box Graph Evasion Attacks to Any-Layer Graph Neural Networks via Influence Function

45. Reinforcement Learning-based Black-Box Evasion Attacks to Link Prediction in Dynamic Graphs

46. Certified Robustness of Graph Neural Networks against Adversarial Structural Perturbation

47. LotteryFL: Personalized and Communication-Efficient Federated Learning with Lottery Ticket Hypothesis on Non-IID Datasets

48. Backdoor Attacks to Graph Neural Networks

49. Perturbing Across the Feature Hierarchy to Improve Standard and Strict Blackbox Attack Transferability

50. On Certifying Robustness against Backdoor Attacks via Randomized Smoothing

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