cs.AI updates on arXiv.org 10月17日 12:19
CoreGuard:边缘部署LLM的安全保护方法
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本文介绍了一种名为CoreGuard的计算和通信效率高的保护方法,用于保护边缘部署的大型语言模型(LLMs),以应对安全威胁。

arXiv:2410.13903v2 Announce Type: replace-cross Abstract: Proprietary large language models (LLMs) exhibit strong generalization capabilities across diverse tasks and are increasingly deployed on edge devices for efficiency and privacy reasons. However, deploying proprietary LLMs at the edge without adequate protection introduces critical security threats. Attackers can extract model weights and architectures, enabling unauthorized copying and misuse. Even when protective measures prevent full extraction of model weights, attackers may still perform advanced attacks, such as fine-tuning, to further exploit the model. Existing defenses against these threats typically incur significant computational and communication overhead, making them impractical for edge deployment. To safeguard the edge-deployed LLMs, we introduce CoreGuard, a computation- and communication-efficient protection method. CoreGuard employs an efficient protection protocol to reduce computational overhead and minimize communication overhead via a propagation protocol. Extensive experiments show that CoreGuard achieves upper-bound security protection with negligible overhead.

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CoreGuard LLM 边缘部署 安全保护 计算效率
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