Region saliency detection via multi-feature on absorbing Markov chain

被引:0
|
作者
Wenjie Zhang
Qingyu Xiong
Weiren Shi
Shuhan Chen
机构
[1] Chongqing University,College of Automation
[2] Key Laboratory of Dependable Service Computing in Cyber Physical Society,School of Software Engineering
[3] MOE,College of Information Engineering
[4] Chongqing University,undefined
[5] Yangzhou University,undefined
来源
The Visual Computer | 2016年 / 32卷
关键词
Saliency region; Image contrast; Space relation ; Background prior; Absorbing Markov chain;
D O I
暂无
中图分类号
学科分类号
摘要
Saliency region detection plays an important role in image pre-processing, and uniformly emphasizing saliency region is still an intractable problem in computer vision. In this paper, we present a data-driven salient region detection method via multi-feature (included contrast, spatial relationship and background prior, etc.) on absorbing Markov chain, which uses super pixel to extract salient regions, and each super-pixel represents a node. In detail, we first construct function to calculate absorption probability of each node on absorbing Markov chain. Second we utilize image contrast and space relation to model the prior salient map which is provided to foreground salient nodes and then calculate the saliency of nodes based on absorption probability. Third, we also exploit background prior to supply the absorbing nodes and compute the saliency of nodes. Finally, we fuse both the saliency of nodes by cosine similarity measurement method and acquire the ultimate saliency map. Our approach is simple and efficient and highlights not only a single object but also multiple objects consistently. We test the proposed method on MSRA-B, iCoSeg and SED databases. Experimental results illustrate that the proposed approach presents better robustness and efficiency against the eleven state-of-the art algorithms.
引用
收藏
页码:275 / 287
页数:12
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