cs.AI updates on arXiv.org 10月22日 12:23
LLM辅助隐私保护电话诈骗检测
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本文探讨了如何利用大型语言模型(LLMs)进行电话诈骗检测,同时保护用户隐私。提出了一种名为MASK的框架,允许根据用户偏好动态调整隐私保护,支持多种数据清洗方法。

arXiv:2510.18493v1 Announce Type: cross Abstract: Phone scams remain a pervasive threat to both personal safety and financial security worldwide. Recent advances in large language models (LLMs) have demonstrated strong potential in detecting fraudulent behavior by analyzing transcribed phone conversations. However, these capabilities introduce notable privacy risks, as such conversations frequently contain sensitive personal information that may be exposed to third-party service providers during processing. In this work, we explore how to harness LLMs for phone scam detection while preserving user privacy. We propose MASK (Modular Adaptive Sanitization Kit), a trainable and extensible framework that enables dynamic privacy adjustment based on individual preferences. MASK provides a pluggable architecture that accommodates diverse sanitization methods - from traditional keyword-based techniques for high-privacy users to sophisticated neural approaches for those prioritizing accuracy. We also discuss potential modeling approaches and loss function designs for future development, enabling the creation of truly personalized, privacy-aware LLM-based detection systems that balance user trust and detection effectiveness, even beyond phone scam context.

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电话诈骗检测 大型语言模型 隐私保护 数据清洗
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