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Anisotropic Partial Differential Equation based Video Saliency Detection

Citation Author(s):
Wai Lam Hoo, Chee Seng Chan
Submitted by:
Chee Seng Chan
Last updated:
5 October 2018 - 2:49pm
Document Type:
Poster
Document Year:
2018
Event:
Presenters:
Wai Lam Hoo
Paper Code:
ICIP2644
 

In this paper, we propose a novel video saliency detection method using the Partial Differential Equations (PDEs). We first form a static adaptive anisotropic PDE model from the unpredicted frames of the video using a detection map and a saliency seeds set of most attractive image elements. At the same time, we also extract motion features from the predicted frames of the video to generate motion saliency map. Then, we combine these two maps to obtain the final saliency map (video). Experiments on various human-action datasets show that our video saliency detection model performs favourably against the conventional solutions.

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