2017
DOI: 10.1016/j.cviu.2017.01.008
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An edge-based method for effective abandoned luggage detection in complex surveillance videos

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Cited by 21 publications
(9 citation statements)
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“…Figure 7 shows the sample output of how the abandoned objects have been identified in real time dataset. The performance of this proposed approach has been measured in terms of sensitivity and misclassification rate which are computed as shown in (2) and 3respectively. Table 6 and Table 7 It can be seen from Table 6 that the sensitivity of the proposed approach when tested with ABODA dataset is computed as below.…”
Section: Results Discussionmentioning
confidence: 99%
“…Figure 7 shows the sample output of how the abandoned objects have been identified in real time dataset. The performance of this proposed approach has been measured in terms of sensitivity and misclassification rate which are computed as shown in (2) and 3respectively. Table 6 and Table 7 It can be seen from Table 6 that the sensitivity of the proposed approach when tested with ABODA dataset is computed as below.…”
Section: Results Discussionmentioning
confidence: 99%
“…Stationary Foreground Detection (SFD) aims to detect objects that remain in place for some time in a video sequence by analyzing spatio-temporal persistent patterns. Existing approaches focus on extracting such patterns from background subtraction approaches [46,47,48] or other features [49,50]. We organize the literature into the following categories (see Table 2 for a summary of the main approaches): single foreground mask, multiple foreground mask, model stability, and other approaches.…”
Section: Stages Of Abandoned Object Detectionmentioning
confidence: 99%
“…Furthermore, this approach was extended to consider color videos by moving from ICA to Independent Vector Analysis (IVA) in mono-camera [92] and multi-camera scenarios [93]. Recently, [50] proposed to overcome the limitations of approaches based on pixel intensities by analyzing persistent foreground edges, which were clustered to obtain a stable edges mask and analyzed in terms of position and stability in time to delineate the object bounding box. Furthermore, an abandoned object classifier based on edges’ position, orientation, and staticness scores was applied.…”
Section: Stages Of Abandoned Object Detectionmentioning
confidence: 99%
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“…Szwoch [18] describes an algorithm for the detection of stable regions by comparing these regions with the contours of moving objects. Dahi et al [14] present a method based on static edge detection and classification. Pham et al [15] propose a two-stage method for unattended object detection.…”
Section: Related Workmentioning
confidence: 99%