Partially Redacted: Data, AI, Security, and Privacy cover image

Prompt Injection Attacks with SVAM's Devansh

Partially Redacted: Data, AI, Security, and Privacy

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Navigating Complexity and Privacy in LLMs

The chapter delves into the complexities of fair use in copyright, the risks of overfitting data in models leading to potential exploitation, and the challenges of memorization in LLMs resulting in conflicts in decision-making and output validation. It discusses data privacy nuances, the significance of privacy-preserving methods like substitution, and the importance of a privacy gateway to safeguard sensitive information. Emphasizing the need for good design and caution against blind trust in new technologies, the chapter advises on building LLM-based applications with skepticism, domain knowledge, and user-centric design.

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