A novel method for salient object detection via compactness measurement

Jiwhan Kim, Han S. Lee, Junmo Kim
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引用次数: 3

Abstract

Salient object detection is a process of extracting an object which is visually attractive from a single image or a video. As a powerful technique for automatic image or video segmentation, saliency detection has been focused and studied recently. In this paper, we propose a novel method for salient object detection without training or learning-based techniques. The proposed framework consists of two major steps, the generation of saliency map candidates and the selection of an optimal saliency map. To generate saliency map candidates, prior maps based on combinations of RGB color components are proposed. To select the optimal saliency map among the candidates, we propose a compactness measure, which evaluates the degree to which the generated saliency maps show objects. As a result, among recent works on saliency detection, our saliency detection method achieves the highest performance in terms of saliency detection.
一种基于紧凑度测量的显著目标检测新方法
显著目标检测是从单个图像或视频中提取具有视觉吸引力的目标的过程。作为一种强大的图像或视频自动分割技术,显著性检测是近年来研究的热点。在本文中,我们提出了一种新的显著目标检测方法,无需训练或基于学习的技术。该框架包括两个主要步骤:显著性候选图的生成和最优显著性图的选择。为了生成显著性候选图,提出了基于RGB颜色分量组合的先验图。为了从候选显著性图中选择最优显著性图,我们提出了一个紧凑度度量,它评估生成的显著性图显示对象的程度。因此,在最近的显著性检测工作中,我们的显著性检测方法在显著性检测方面达到了最高的性能。
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