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基于低秩背景约束与多线索传播的图像显著性检测
引用本文:唐红梅, 白梦月, 韩力英, 梁春阳. 基于低秩背景约束与多线索传播的图像显著性检测[J]. 电子与信息学报, 2021, 43(5): 1432-1440. doi: 10.11999/JEIT200193
作者姓名:唐红梅  白梦月  韩力英  梁春阳
作者单位:河北工业大学电子信息工程学院 天津 300401
基金项目:河北省自然科学基金(F2019202387)
摘    要:针对当前基于流形排序的显著性检测算法缺乏子空间信息的挖掘和节点间传播不准确的问题,该文提出一种基于低秩背景约束与多线索传播的图像显著性检测算法。融合颜色、位置和边界连通度等初级视觉先验形成背景高级先验,约束图像特征矩阵的分解,强化低秩矩阵与稀疏矩阵的差异,充分描述子空间结构信息,从而有效地将前景与背景分离;引入稀疏感知...

关 键 词:显著性检测  低秩背景约束  多线索传播  稀疏感知
收稿时间:2020-03-20
修稿时间:2020-09-13

Image Saliency Detection Based on Background Constraint of Low Rank and Multi-cue Propagation
Hongmei TANG, Mengyue BAI, Liying HAN, Chunyang LIANG. Image Saliency Detection Based on Background Constraint of Low Rank and Multi-cue Propagation[J]. Journal of Electronics & Information Technology, 2021, 43(5): 1432-1440. doi: 10.11999/JEIT200193
Authors:Hongmei TANG  Mengyue BAI  Liying HAN  Chunyang LIANG
Affiliation:School of Electronics and Information Engineering, Hebei University of Technology, Tianjin 300401, China
Abstract:Considering the lack of subspace information digging and inaccurate propagation between nodes in existing saliency detection algorithm based on manifold ranking, an image saliency detection algorithm based on background constraint of low rank and multi-cue propagation is proposed. Primary visual priors such as color, location and boundary connectivity prior are fused to form a background high-level prior, which restrains the low rank decomposition of feature matrix and strengths the difference between low rank matrix and spares matrix, describes structural information of subspace fully to separate foreground and background efficiently. Cues of rareness perception and local smoothing are introduced for improving the reconstruction of propagation matrix, which improves the node’s propagation capacity that has low probability of color feature occurrence, enhances the relevance of local region, strengthens the properties of nodes accurately to obtain the compact and continuous salient regions. The experimental results on three benchmark datasets and the application to image retrieval demonstrate the efficiency and robustness of the proposed algorithm.
Keywords:Saliency detection  Background constraint of low rank  Multi-cue propagation  Rareness perception
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