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Tracking-Learning-Detection

Zdenek KalalKrystian MikolajczykJiřı́ Matas

Abstract

This paper investigates long-term tracking of unknown objects in a video stream. The object is defined by its location and extent in a single frame. In every frame that follows, the task is to determine the object's location and extent or indicate that the object is not present. We propose a novel tracking framework (TLD) that explicitly decomposes the long-term tracking task into tracking, learning, and detection. The tracker follows the object from frame to frame. The detector localizes all appearances that have been observed so far and corrects the tracker if necessary. The learning estimates the detector's errors and updates it to avoid these errors in the future. We study how to identify the detector's errors and learn from them. We develop a novel learning method (P-N learning) which estimates the errors by a pair of "experts": (1) P-expert estimates missed detections, and (2) N-expert estimates false alarms. The learning process is modeled as a discrete dynamical system and the conditions under which the learning guarantees improvement are found. We describe our real-time implementation of the TLD framework and the P-N learning. We carry out an extensive quantitative evaluation which shows a significant improvement over state-of-the-art approaches.

Video Surveillance and Tracking MethodsAnomaly Detection Techniques and ApplicationsData Stream Mining TechniquesArtificial intelligenceComputer scienceTracking (education)Frame (networking)DetectorObject detectionTask (project management)Computer visionObject (grammar)Video tracking

Funding

  • Engineering and Physical Sciences Research Council
Citations
3,287
FWCI
104.47
field-weighted impact
References
91
Percentile
100%
vs. same field & year
Citations per year
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References
Object tracking
ACM Computing Surveys · 2006 · 4,680 citations
Robust and optimal control
Automatica · 1997 · 5,508 citations
Kernel-based object tracking
IEEE Transactions on Pattern Analysis and Machine Intelligence · 2003 · 4,567 citations
Incremental Learning for Robust Visual Tracking
International Journal of Computer Vision · 2007 · 3,087 citations
Distinctive Image Features from Scale-Invariant Keypoints
International Journal of Computer Vision · 2004 · 54,768 citations
Recent developments in human motion analysis
Pattern Recognition · 2003 · 962 citations
CONDENSATION—Conditional Density Propagation for Visual Tracking
International Journal of Computer Vision · 1998 · 4,874 citations
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Tracking-Learning-Detection · Scinovex