2015
DOI: 10.1109/tifs.2015.2408263
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Abandoned Object Detection via Temporal Consistency Modeling and Back-Tracing Verification for Visual Surveillance

Abstract: This paper presents an effective approach for detecting abandoned luggage in surveillance videos. We combine short-and long-term background models to extract foreground objects, where each pixel in an input image is classified as a 2-bit code. Subsequently, we introduce a framework to identify static foreground regions based on the temporal transition of code patterns, and to determine whether the candidate regions contain abandoned objects by analyzing the back-traced trajectories of luggage owners. The exper… Show more

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Cited by 85 publications
(61 citation statements)
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References 14 publications
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“…As a practical application topic, security event recognition attracted much less effort from researchers. And even most of the existing works for this topic only focus on the shallow task of detecting abandoned luggage (Porikli et al, 2007, Fan and Pankanti, 2011, Liao et al, 2008, Evangelio et al, 2011, Fan et al, 2013, Lin et al, 2015. They learn a robuster background model and then identify static foreground objects by subtraction.…”
Section: Related Workmentioning
confidence: 99%
See 2 more Smart Citations
“…As a practical application topic, security event recognition attracted much less effort from researchers. And even most of the existing works for this topic only focus on the shallow task of detecting abandoned luggage (Porikli et al, 2007, Fan and Pankanti, 2011, Liao et al, 2008, Evangelio et al, 2011, Fan et al, 2013, Lin et al, 2015. They learn a robuster background model and then identify static foreground objects by subtraction.…”
Section: Related Workmentioning
confidence: 99%
“…To handle temporary occlusion in finding the owner, (Lin et al, 2015) used a back-tracing verification strategy. However, the verification is triggered only when there is no moving foreground object within the object's neighbor region of predefined radius.…”
Section: Related Workmentioning
confidence: 99%
See 1 more Smart Citation
“…Kevin Lin et al [1] proposed a temporal consistency model combining a back-tracing algorithm for abandoned object detection. The temporal consistency model is described by a very simple Finite state machine (FSM).…”
Section: Literature Surveymentioning
confidence: 99%
“…If hitCount goes above the user defined threshold value, an alarm is triggered indicating the abandoned object is detected. Kevin Lin, Shen-Chi Chen, Chu-Song Chen, Daw-Tung Lin and Yi-Ping Hung [18] have presented their work on abandoned object detection via temporal consistency modelling and back-tracking verification for visual surveillance. Temporal dual-rate foreground integration method is proposed for static-foreground estimation for single camera video images.…”
Section: Related Workmentioning
confidence: 99%