JOURNAL ARTICLE

Salient Object Detection Based on Background Feature Clustering

Kan HuangYong ZhangBo LvYong-biao Shi

Year: 2017 Journal:   Advances in Multimedia Vol: 2017 Pages: 1-9   Publisher: Hindawi Publishing Corporation

Abstract

Automatic estimation of salient object without any prior knowledge tends to greatly enhance many computer vision tasks. This paper proposes a novel bottom-up based framework for salient object detection by first modeling background and then separating salient objects from background. We model the background distribution based on feature clustering algorithm, which allows for fully exploiting statistical and structural information of the background. Then a coarse saliency map is generated according to the background distribution. To be more discriminative, the coarse saliency map is enhanced by a two-step refinement which is composed of edge-preserving element-level filtering and upsampling based on geodesic distance. We provide an extensive evaluation and show that our proposed method performs favorably against other outstanding methods on two most commonly used datasets. Most importantly, the proposed approach is demonstrated to be more effective in highlighting the salient object uniformly and robust to background noise.

Keywords:
Salient Artificial intelligence Computer science Cluster analysis Discriminative model Pattern recognition (psychology) Feature (linguistics) Object (grammar) Computer vision Noise (video) Upsampling Image (mathematics)

Metrics

5
Cited By
0.51
FWCI (Field Weighted Citation Impact)
30
Refs
0.67
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Visual Attention and Saliency Detection
Physical Sciences →  Computer Science →  Computer Vision and Pattern Recognition
Advanced Image and Video Retrieval Techniques
Physical Sciences →  Computer Science →  Computer Vision and Pattern Recognition
Gaze Tracking and Assistive Technology
Physical Sciences →  Computer Science →  Human-Computer Interaction

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