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Code of the OPS-SAT benchmark for detecting anomalies in satellite telemetry

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OPSSAT-AD

Code of the OPS-SAT benchmark for detecting anomalies in satellite telemetry.

This package provides a novel collection of satellite telemetry for anomaly detection. It has been prepared and evaluated with the help of satellite operators and includes data from the ESA OPS-SAT aircraft, the first flying nanosatellite laboratory.

Configurations Tested

  • python 3.9 (the Python configuration we used is detailed in the included requirements.txt file).

How to use and how to cite

  • The two data files required for this code can be found in this repository [^1].
  • The paper [^2] provides benchmark results of 30 supervised and unsupervised anomaly detection models on this dataset.
  • In the other conference paper we presented some preliminary results on this dataset [^3].

References

[^1] DATA: OPSSAT-AD - anomaly detection dataset for satellite telemetry Zenodo:12588359.

[^2] JOURNAL PAPER: Ruszczak, B., Kotowski. K., Evans, D., Nalepa, J.: The OPS-SAT benchmark for detecting anomalies in satellite telemetry, 2024, preprint arXiv:2407.04730.

[^3] CONFERENCE PAPER: Ruszczak, B., Kotowski. K., Andrzejewski, J., et al.: (2023). Machine Learning Detects Anomalies in OPS-SAT Telemetry. Computational Science – ICCS 2023. LNCS, vol 14073. Springer, Cham. DOI:10.1007/978-3-031-35995-8_21.

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