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Ferromagnetic inhomogeneities along the track serve as landmarks. With these, each track section in the track network can be uniquely identified. In addition to non-contact speed determination, this also provides a track-selective method for determining the absolute position of the rail vehicle.
Mechanical engineering & materials --- bordautonome Lokalisierung --- berührungslose Geschwindigkeitsmessung --- ferromagnetische Inhomogenitäten --- ferromagnetische Signaturen --- Schienenfahrzeug --- high accuracy velocity and position estimation --- ferromagnetic inhomogeneities --- ferromagnetic signatures --- rail vehicle
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GNSS is often inaccurate and satellite signals are not always available, which results in ambiguous situations. In order to reduce their negative effects on train-borne localization, this work proposes an approach for the detection of tracks, turnouts, and branching directions solely from 2d lidar sensor measurements. The experimental evaluation shows highly correct and complete results. In summary, these detections are sufficient to reduce ambiguity problems in train-borne localization.
lidar-basierte Eisenbahn-Infrastruktur-Detektion (Schienen --- Gleise --- lidar based railway infrastructure detection (rails --- bordautonome Lokalisierung --- Topologie- und Befahrrichtungserkennung --- determination of topology and branching direction --- train-borne localization --- Weichen) --- turnouts) --- tracks
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