Robust Saliency Detection via Fusing Foreground and Background Priors

November 01, 2017 ยท Declared Dead ยท ๐Ÿ› arXiv.org

๐Ÿฆด CAUSE OF DEATH: Skeleton Repo
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Repo contents: FBP-ASD.zip, ICIP.png, README.md, framework.jpg, framework1.pdf

Authors Kan Huang, Chunbiao Zhu, Ge Li arXiv ID 1711.00322 Category cs.CV: Computer Vision Citations 5 Venue arXiv.org Repository https://github.com/ChunbiaoZhu/FBP โญ 3 Last Checked 1 month ago
Abstract
Automatic Salient object detection has received tremendous attention from research community and has been an increasingly important tool in many computer vision tasks. This paper proposes a novel bottom-up salient object detection framework which considers both foreground and background cues. First, A series of background and foreground seeds are selected from an image reliably, and then used for calculation of saliency map separately. Next, a combination of foreground and background saliency map is performed. Last, a refinement step based on geodesic distance is utilized to enhance salient regions, thus deriving the final saliency map. Particularly we provide a robust scheme for seeds selection which contributes a lot to accuracy improvement in saliency detection. Extensive experimental evaluations demonstrate the effectiveness of our proposed method against other outstanding methods.
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