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Zero-Velocity Detection—An Algorithm Evaluation

IEEE Transactions on Biomedical Engineering · 2010 · Vol. 57(11) · pp. 2657–2666
Isaac SkogPeter HändelJohn-Olof NilssonJouni Rantakokko

Abstract

In this paper, we investigate the problem of detecting-time epochs when zero-velocity updates can be applied in a foot-mounted inertial navigation (motion-tracking) system. We examine three commonly used detectors: the acceleration-moving variance detector, the acceleration-magnitude detector, and the angular rate energy detector. We demonstrate that all detectors can be derived within the same general likelihood ratio test (LRT) framework, given the different prior knowledge about the sensor signals. Further, by combining all prior knowledge, we derive a new LRT detector. Subsequently, we develop a methodology to evaluate the performance of the detectors. Employing the developed methodology, we evaluate the performance of the detectors using leveled ground, slow (approximately 3 km/h) and normal (approximately 5 km/h) gait data. The test results are presented in terms of detection versus false-alarm probability. Our preliminary results show that the new detector performs marginally better than the angular rate energy detector that outperforms both the acceleration-moving variance detector and the acceleration-magnitude detector.

Indoor and Outdoor Localization TechnologiesInertial Sensor and NavigationGait Recognition and AnalysisDetectorAccelerationFalse alarmEnergy (signal processing)Constant false alarm rateAlgorithmTracking (education)Inertial navigation systemPhysicsComputer science
Citations
634
FWCI
16.73
field-weighted impact
References
33
Percentile
99%
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References
In-Car Positioning and Navigation Technologies—A Survey
IEEE Transactions on Intelligent Transportation Systems · 2009 · 579 citations
Assessment of Walking Features From Foot Inertial Sensing
IEEE Transactions on Biomedical Engineering · 2005 · 642 citations
Quaternion-Based Extended Kalman Filter for Determining Orientation by Inertial and Magnetic Sensing
IEEE Transactions on Biomedical Engineering · 2006 · 864 citations
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