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Matrix Profile based Anomaly Detection in Streaming Gait Data for Fall Prevention

2023-07-18 · Branislav Gerazov, Elena Hadzieva, Andrei Krivosei, Fiorella Ines Soto Sanchez, Jakob Rostovski, Alar Kuusik, Mahtab Alam

The automatic detection of gait anomalies can lead to systems that can be used for fall detection and prevention. In this paper, we present a gait anomaly detection system based on the Matrix Profile (MP) algorithm. The MP algorithm is exact, parameter free, simple and efficient, making it a perfect candidate for on the edge deployment. We propose a gait anomaly detection system that is able to adapt to an individual's gait pattern and successfully detect anomalous steps with short latency. To evaluate the system we record a small database of enacted anomalous steps. The results show the system outperforms a more complex Neural Network baseline.

📄 PDF Abstract BibTeX arXiv:2307.09121

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Anomaly Detection

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