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Beginnt 4 June 2026 11:13
Endet 4 June 2026
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1 hour 13 minutes
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Übersicht
Discover how to design secure AI systems from the ground up, covering threat modeling, input manipulation defenses, and data output protection strategies.
Lehrplan
- Introduction to AI Security
- Understanding Threat Modeling for AI
- Designing Secure AI Architectures
- Input Manipulation Defenses
- Data Output Protection Strategies
- Securing AI Model Deployment
- Case Studies and Practical Applications
- Conclusion and Future Directions
Overview of AI and Security Intersection
Importance of Security in AI Systems
Basics of Threat Modeling
Identifying Potential Threats in AI Systems
Assessing Risk and Prioritizing Threats
Secure System Design Principles
Implementing Secure Software Development Life Cycle (SDLC) for AI
Integrating Security in AI Model Development
Overview of Adversarial Attacks
Techniques to Defend Against Input Manipulation
Data Preprocessing Strategies
Robust Feature Engineering
Defensive Distillation
Ensuring Data Integrity and Confidentiality
Techniques for Secure Output Handling
Privacy-Preserving Techniques in AI
Best Practices for Model Deployment
Monitoring and Incident Response in AI Systems
Regular Security Audits and Updates
Real-World Examples of AI Security Breaches
Implementing Learned Security Strategies in AI Projects
Emerging Trends in AI Security
Preparing for Future Challenges in Secure AI Development
Fachgebiete
Information Security (InfoSec)