
arXiv: 2503.23138
Communication encryption is crucial in computer technology, but existing algorithms struggle with balancing cost and security. We propose EncGPT, a multi-agent framework using large language models (LLM). It includes rule, encryption, and decryption agents that generate encryption rules and apply them dynamically. This approach addresses gaps in LLM-based multi-agent systems for communication security. We tested GPT-4o's rule generation and implemented a substitution encryption workflow with homomorphism preservation, achieving an average execution time of 15.99 seconds.
FOS: Computer and information sciences, Computer Science - Cryptography and Security, Computer Science - Multiagent Systems, Cryptography and Security (cs.CR), Multiagent Systems (cs.MA)
FOS: Computer and information sciences, Computer Science - Cryptography and Security, Computer Science - Multiagent Systems, Cryptography and Security (cs.CR), Multiagent Systems (cs.MA)
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