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cs.CR2026
Privacy-Preserving Mechanisms Enable Cheap Verifiable Inference of LLMs
Arka Pal, Louai Zahran, William Gvozdjak +2
As large language models (LLMs) continue to grow in size, fewer users are able to host and run models locally. This has led to increased use of third-party hosting services. Howeve…
cs.CR2025
An Attack to Break Permutation-Based Private Third-Party Inference Schemes for LLMs
Rahul Thomas, Louai Zahran, Erica Choi +3
Recent advances in Large Language Models (LLMs) have led to the widespread adoption of third-party inference services, raising critical privacy concerns. Existing methods of perfor…