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metro-ai-apps-recipe

Build an end-to-end, vertical-agnostic computer-vision analytics stack on Intel hardware from a single streamlined Docker Compose deployment: DL Streamer Pipeline Server plus MediaMTX/WebRTC, Coturn, Mosquitto, Node-RED, Grafana, and Nginx. It streams live annotated video over WebRTC and flows detection metadata DLSPS->MQTT->Node-RED->Grafana, with an optional SceneScape multi-camera spatial-analysis path. USE FOR standing up an object-detection, classification, counting, or zone-alerting pipeline for any vertical (smart city/ITS, retail, industrial, logistics, healthcare, or a custom OpenVINO/ONNX model) where only the model, class filter, alert rule, and dashboard change. Also USE FOR a lightweight **demo/PoC** single application (no full stack) — a simple DL Streamer pipeline (via the `dlstreamer-coding-agent` skill) or a simple OpenVINO inference app (guided by the OpenVINO 2026 docs) selected via the mode question. DO NOT USE FOR non-Intel or cloud-only deployments, Prometheus/OpenTelemetry metrics stack

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Datos de origen

Repositorio
open-edge-platform/edge-ai-suites
Última actividad en el origen
13 de agosto de 2026 a las 14:20
Idioma detectado de SKILL.md
inglés
Estrellas
127
Forks
155

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