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peter

Field-test deployment of AI monitoring devices across four ECEC centres in NSW, running on NVIDIA Jetson Orin Nano Super edge hardware.

Layout

  • docs/methodology.md — site selection (2 × 2 urban/regional × large/small), governance dataset sources, study design rationale.
  • docs/jetson-processing.md — hardware and software stack on the Orin Nano Super, privacy boundary, failure modes considered.
  • docs/data-acquisition-protocol.md — what is captured, what is persisted, consent and notification, retention, access control, incident workflow.
  • docs/timestamp-attestation-procedure.md — how each Monte Carlo run's start/end is signed on-device, chained, and uplinked. Forward-looking procedure; no live attestation records are stored in this repo.
  • jetson-logging/ — device-side logging, privacy filter (the chokepoint), tegrastats collector, retention sweeper, and self-tests that gate the inference pipeline at boot.

Privacy posture (read this first)

Raw video and raw audio are processed on-device and never persisted or uplinked. Only event records and aggregates pass the privacy filter in jetson-logging/filters/privacy.py. The supervisor refuses to start inference if the filter's self-tests fail at boot.

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