Vitalik Builds Three-Layer Privacy Architecture for Personalized Health Recommendations

By: x.com|10/04/2026 01:13:00

Vitalik generates personalized dietary and exercise recommendations by combining health and travel data with cutting-edge models through personal experimentation, while protecting private information. The system orchestrates using the local model Qwen 3.8 Flash Next and calls upon powerful remote models for higher-level thinking and knowledge, employing a three-layer privacy protection architecture: the identity layer constructs query requests on behalf of users using the local model to avoid identity exposure; the payment layer uses zkAPI to conceal payment information; the network layer hides IP addresses through Tor. The system has successfully operated and provided recommendations. Vitalik pointed out major shortcomings, including: Tor's insufficient optimization for request unlinking and high latency; the local model's speed is only 20-30 TPS, while ideally it should be over 100; the stricter the data protection, the more limited the assistance that remote models can provide.

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