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Securing AI Agents
By Ken Huang
0 - Default Title
Description
The book features dedicated chapters on agentic AI threat modeling, identity security, communication security in MAS (Multi-Agent Systems), red teaming, AI agents life cycle security, capability and security benchmarking using GAIA and AIR frameworks, Reinforcement Learning (RL) and security, secure agentic AI deployment strategies, innovative open source security frameworks (Cloud Security Alliance and OWASP examples), and case studies of commercial startups addressing agentic AI security challenges. It also explores the unique threat landscape of agentic AI, the challenges of securing communication and identity within multi-agent systems, and the practical application of security benchmarks and open-source frameworks.
As such, the book equips cybersecurity professionals, AI developers, and researchers with the knowledge and tools to mitigate the unique security risks associated with autonomous agents and multi-agent systems.
Product details
Number of Pages:
412
Release Date:
2025-10-02
Publication Date:
2025-10-02
Publisher:
Springer
Languages:
Original:
English
ISBN10:
3032021294
ISBN13:
9783032021298
GPSR Manufacturer Reference:
Weight:
779 g
Height:
160 cm
Width:
241 cm
Thickness:
28 cm
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