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[CourseClub.Me] Oreilly - Privacy-Preserving Machine Learning

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视频 2024-1-17 23:26 2024-11-26 18:20 121 1.15 GB 49
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文件列表
  1. 001. Part 1. Basics of privacy-preserving machine learning with differential privacy.mp42.34MB
  2. 002. Chapter 1. Privacy considerations in machine learning.mp412.17MB
  3. 003. Chapter 1. The threat of learning beyond the intended purpose.mp415.55MB
  4. 004. Chapter 1. Threats and attacks for ML systems.mp434.41MB
  5. 005. Chapter 1. Securing privacy while learning from data Privacy-preserving machine learning.mp428.85MB
  6. 006. Chapter 1. How is this book structured.mp46.44MB
  7. 007. Chapter 1. Summary.mp43.81MB
  8. 008. Chapter 2. Differential privacy for machine learning.mp460.01MB
  9. 009. Chapter 2. Mechanisms of differential privacy.mp452.83MB
  10. 010. Chapter 2. Properties of differential privacy.mp447.45MB
  11. 011. Chapter 2. Summary.mp45.1MB
  12. 012. Chapter 3. Advanced concepts of differential privacy for machine learning.mp419.6MB
  13. 013. Chapter 3. Differentially private supervised learning algorithms.mp447.46MB
  14. 014. Chapter 3. Differentially private unsupervised learning algorithms.mp417.24MB
  15. 015. Chapter 3. Case study Differentially private principal component analysis.mp464.12MB
  16. 016. Chapter 3. Summary.mp44.54MB
  17. 017. Part 2. Local differential privacy and synthetic data generation.mp41.14MB
  18. 018. Chapter 4. Local differential privacy for machine learning.mp448.89MB
  19. 019. Chapter 4. The mechanisms of local differential privacy.mp445.43MB
  20. 020. Chapter 4. Summary.mp43.61MB
  21. 021. Chapter 5. Advanced LDP mechanisms for machine learning.mp43.84MB
  22. 022. Chapter 5. Advanced LDP mechanisms.mp425.93MB
  23. 023. Chapter 5. A case study implementing LDP naive Bayes classification.mp453.74MB
  24. 024. Chapter 5. Summary.mp42.49MB
  25. 025. Chapter 6. Privacy-preserving synthetic data generation.mp418MB
  26. 026. Chapter 6. Assuring privacy via data anonymization.mp415.08MB
  27. 027. Chapter 6. DP for privacy-preserving synthetic data generation.mp428.43MB
  28. 028. Chapter 6. Case study on private synthetic data release via feature-level micro-aggregation.mp444.93MB
  29. 029. Chapter 6. Summary.mp42.83MB
  30. 030. Part 3. Building privacy-assured machine learning applications.mp41.67MB
  31. 031. Chapter 7. Privacy-preserving data mining techniques.mp49.68MB
  32. 032. Chapter 7. Privacy protection in data processing and mining.mp48.09MB
  33. 033. Chapter 7.3 Protecting privacy by modifying the input.mp44.36MB
  34. 034. Chapter 7. Protecting privacy when publishing data.mp448.96MB
  35. 035. Chapter 7. Summary.mp42.27MB
  36. 036. Chapter 8. Privacy-preserving data management and operations.mp44.52MB
  37. 037. Chapter 8. Privacy protection beyond k-anonymity.mp429.68MB
  38. 038. Chapter 8. Protecting privacy by modifying the data mining output.mp413.89MB
  39. 039. Chapter 8. Privacy protection in data management systems.mp480.56MB
  40. 040. Chapter 8. Summary.mp43.63MB
  41. 041. Chapter 9. Compressive privacy for machine learning.mp414.2MB
  42. 042. Chapter 9. The mechanisms of compressive privacy.mp415.76MB
  43. 043. Chapter 9. Using compressive privacy for ML applications.mp436.4MB
  44. 044. Chapter 9. Case study Privacy-preserving PCA and DCA on horizontally partitioned data.mp4103.76MB
  45. 045. Chapter 9. Summary.mp43.38MB
  46. 046. Chapter 10. Putting it all together Designing a privacy-enhanced platform (DataHub).mp419.64MB
  47. 047. Chapter 10. Understanding the research collaboration workspace.mp427.07MB
  48. 048. Chapter 10. Integrating privacy and security technologies into DataHub.mp431.84MB
  49. 049. Chapter 10. Summary.mp43.42MB
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