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Show HN: Prima Veritas – Deterministic Analytics Engine for Reproducible ML

MLoffshore Tuesday, December 02, 2025

Hi HN — I built a bit-for-bit deterministic analytics engine.

It runs classical ML pipelines (normalization → canonical transform → deterministic K-Means) with zero nondeterminism:

• no floating-point divergence • no randomness • no environment drift • no timestamp or locale sensitivity • Docker-pinned numeric behavior • reproducible across machines, OSes, and hardware

The OSS drop includes:

• deterministic ingest + normalization • deterministic K-Means (Iris + Wine) • golden-reference hashes • cross-machine reproducibility tests • 3-machine ingest demo video (direct download: https://github.com/bryanziehl/prima-veritas/releases/downloa... ) • MIT license + full docs + architecture diagrams

If you work in ML, science, infra, or compliance, you already know how painful nondeterministic pipelines are. This project is a first “Hello World” toward a broader deterministic verification kernel.

Feedback, critique, or reproducibility tests welcome — especially on different machine architectures. Happy to answer anything live.

Summary
Prima Veritas is an open-source framework for building decentralized applications (dApps) on Ethereum. The project aims to provide a secure and scalable platform for developers to create and deploy dApps with ease.
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