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Simple online and realtime tracking

Alex Bewley, Zongyuan Ge, Lionel Ott, Fábio Ramos, Ben Upcroft

20163,908 citationsDOIOpen Access PDF

Abstract

This paper explores a pragmatic approach to multiple object tracking where the main focus is to associate objects efficiently for online and realtime applications. To this end, detection quality is identified as a key factor influencing tracking performance, where changing the detector can improve tracking by up to 18.9%. Despite only using a rudimentary combination of familiar techniques such as the Kalman Filter and Hungarian algorithm for the tracking components, this approach achieves an accuracy comparable to state-of-the-art online trackers. Furthermore, due to the simplicity of our tracking method, the tracker updates at a rate of 260 Hz which is over 20x faster than other state-of-the-art trackers.

Topics & Concepts

BitTorrent trackerComputer scienceTracking (education)Kalman filterComputer visionVideo trackingArtificial intelligenceFocus (optics)DetectorSimplicityKey (lock)Tracking systemSimple (philosophy)Object detectionObject (grammar)Eye trackingPattern recognition (psychology)PhysicsPedagogyEpistemologyComputer securityPhilosophyOpticsPsychologyTelecommunicationsVideo Surveillance and Tracking MethodsAdvanced Image and Video Retrieval TechniquesVideo Analysis and Summarization
Simple online and realtime tracking | Litcius