Publication | Closed Access
Depth saliency based on anisotropic center-surround difference
507
Citations
18
References
2014
Year
Unknown Venue
Machine VisionComputer VisionImage AnalysisStereo VisionNovel Saliency MethodEngineering3D VisionSaliency AnalysisComputer Stereo VisionStereo ImagingDepth MapSaliency DetectionStereoscopic ProcessingDepth Saliency
Most previous works on saliency detection are dedicated to 2D images. Recently it has been shown that 3D visual information supplies a powerful cue for saliency analysis. In this paper, we propose a novel saliency method that works on depth images based on anisotropic center-surround difference. Instead of depending on absolute depth, we measure the saliency of a point by how much it outstands from surroundings, which takes the global depth structure into consideration. Besides, two common priors based on depth and location are used for refinement. The proposed method works within a complexity of O(N) and the evaluation on a dataset of over 1000 stereo images shows that our method outperforms state-of-the-art.
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