DocumentCode :
84483
Title :
Abandoned Object Detection via Temporal Consistency Modeling and Back-Tracing Verification for Visual Surveillance
Author :
Lin, Kevin ; Shen-Chi Chen ; Chu-Song Chen ; Daw-Tung Lin ; Yi-Ping Hung
Author_Institution :
Inst. of Inf. Sci., Taipei, Taiwan
Volume :
10
Issue :
7
fYear :
2015
fDate :
Jul-15
Firstpage :
1359
Lastpage :
1370
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 experimental results obtained based on video images from 2006 Performance Evaluation of Tracking and Surveillance and 2007 Advanced Video and Signal-based Surveillance databases show that the proposed approach is effective for detecting abandoned luggage, and that it outperforms previous methods.
Keywords :
image classification; object detection; video surveillance; 2-bit code; 2006 Performance Evaluation of Tracking and Surveillance; 2007 Advanced Video and Signal-based Surveillance databases; abandoned object detection; back-tracing verification; foreground object extraction; image classification; temporal consistency modeling; temporal transition; video surveillance; visual surveillance; Image color analysis; Object recognition; Silicon; Surveillance; Trajectory; Videos; Visualization; Abandoned luggage detection; abandoned object detection; long-term background model; object detection and tracking; short-term background model; visual surveillance;
fLanguage :
English
Journal_Title :
Information Forensics and Security, IEEE Transactions on
Publisher :
ieee
ISSN :
1556-6013
Type :
jour
DOI :
10.1109/TIFS.2015.2408263
Filename :
7052354
Link To Document :
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