VIGÍA ML: On-Device AI Revolutionizes Gas Well Monitoring with Privacy-First Predictive Console

September 19, 2026
VIGÍA ML: On-Device AI Revolutionizes Gas Well Monitoring with Privacy-First Predictive Console
  • VIGÍA ML runs four live, on-device models in the browser: an LSTM forecaster, an autoencoder anomaly detector, a neural fault classifier, and a recommendation layer that converts findings into actionable guidance.

  • The project embodies a broader philosophy of verifiable, self-hosted AI tooling, echoing the authors’ Universal Trust Adapter approach.

  • Key benefits include privacy-by-architecture, offline operation, zero marginal training/inference costs at the edge, and auditable transparency through visible model weights in DevTools.

  • The tech stack is React 18, TypeScript 5.7, TensorFlow.js 4.22, Vite 6, and Tailwind 4, with 140 tests; all data loading, training, evaluation, and export happen client-side under an AL-1.0 source-available license.

  • A live demo and source code are available: see the demo at alicelabs-llc.github.io/vigia-ml and the repository at github.com/alicelabs-llc/vigia-ml.

  • VIGÍA ML is a browser-based predictive monitoring console for gas wells, enabling production forecasting, anomaly detection, fault diagnosis, and operational recommendations entirely on-device without sending data to servers.

  • The project emphasizes data privacy and governance by ensuring all data remains on the local device, functioning offline as a Progressive Web App with zero inference cost.

  • The UI is Spanish-first to serve LATAM users, while the codebase remains standard TypeScript/React and the interface language is configurable.

  • Practically, the system detects slow drifts and early anomalies that fixed-threshold methods miss, and it provides interpretable reasoning for every recommendation rather than opaque outputs.

  • All four on-device models can be trained on user data, with visible training progress (loss curves) to build trust in model convergence.

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