Privacy-Preserving Customer Support: A Framework for Secure and Scalable Interactions
Anant Prakash Awasthi, Girdhar Gopal Agarwal, Chandraketu Singh,, Rakshit Varma, Sanchit Sharma

TL;DR
This paper presents PP-ZSL, a privacy-preserving framework using large language models for customer support that eliminates local training, enhances scalability, and ensures regulatory compliance.
Contribution
It introduces PP-ZSL, a novel zero-shot learning framework leveraging LLMs with real-time anonymization and retrieval augmentation for privacy-preserving customer support.
Findings
Accurate, privacy-compliant responses achieved
Significant reduction in deployment costs and complexity
Framework applicable across multiple industries
Abstract
The growing reliance on artificial intelligence (AI) in customer support has significantly improved operational efficiency and user experience. However, traditional machine learning (ML) approaches, which require extensive local training on sensitive datasets, pose substantial privacy risks and compliance challenges with regulations like the General Data Protection Regulation (GDPR) and California Consumer Privacy Act (CCPA). Existing privacy-preserving techniques, such as anonymization, differential privacy, and federated learning, address some concerns but face limitations in utility, scalability, and complexity. This paper introduces the Privacy-Preserving Zero-Shot Learning (PP-ZSL) framework, a novel approach leveraging large language models (LLMs) in a zero-shot learning mode. Unlike conventional ML methods, PP-ZSL eliminates the need for local training on sensitive data by…
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Taxonomy
TopicsPrivacy, Security, and Data Protection · Information and Cyber Security · User Authentication and Security Systems
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