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शुरू होता है 5 June 2026 12:06

समाप्त होता है 5 June 2026

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What Can Theory of Cryptography Tell Us About AI Safety

Unlock the potential of cryptographic theory in enhancing AI safety with this insightful content featuring Shafi Goldwasser. Discover how vital principles of cryptography can be harnessed to develop language models with innate safety guarantees. Ideal for enthusiasts and professionals alike, this session bridges the gap between cutting-edge t.
Simons Institute via YouTube

Simons Institute

6076 कोर्स


1 hour 2 minutes

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अपनी गति से आगे बढ़ें

Free Video

वैकल्पिक अपग्रेड उपलब्ध है

अवलोकन

Unlock the potential of cryptographic theory in enhancing AI safety with this insightful content featuring Shafi Goldwasser. Discover how vital principles of cryptography can be harnessed to develop language models with innate safety guarantees.

Ideal for enthusiasts and professionals alike, this session bridges the gap between cutting-edge technology and security, provided by YouTube in collaboration with leading academic institutions.

पाठ्यक्रम

  • Introduction to Cryptographic Theory
  • Brief history and key concepts
    Overview of modern cryptographic techniques
  • Fundamentals of AI Safety
  • Definition and scope of AI safety
    Current challenges in AI safety
  • Intersection of Cryptography and AI Safety
  • Cryptographic principles applicable to AI models
    Case studies where cryptography enhances AI safety
  • Insights from Shafi Goldwasser
  • Key contributions to cryptographic theory
    Application of Goldwasser's principles to AI safety
  • Developing Safety-Guaranteed Language Models
  • Mechanisms for ensuring data privacy and integrity
    Techniques for safeguarding model behavior
  • Secure Multi-Party Computation (SMPC)
  • Principles of SMPC
    Applications in AI to prevent data leakage
  • Zero-Knowledge Proofs in AI
  • Introduction to zero-knowledge proofs
    Practical applications to verify AI model’s claims without revealing internal data
  • Differential Privacy in AI Systems
  • Concepts of differential privacy
    Implementing differential privacy in training AI models
  • Challenges and Limitations
  • Limitations of current cryptographic techniques in AI
    Potential risks and how to mitigate them
  • Future Directions
  • Emerging trends in cryptography for AI safety
    Research opportunities and areas of development
  • Course Conclusion and Takeaways
  • Recap of key lessons
    Discussion on interdisciplinary approaches to AI safety

विषय

Computer Science