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Saliency detection with relative location measure in light field image

机译:在光场图像中使用相对位置度量进行显着性检测

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Saliency detection becomes a crucial requirement for numerous computer vison application. Conventional manifold ranking models have been widely used for saliency detection because it can measure similarity efficiently between the regions, but most of them make use of color and texture information and location information of objects didn't be well exploited, so it cannot work properly when objects is low-contrast. Based on manifold ranking model, this paper proposes a relative location measure on object in light field image. Then an adaptive foreground selection and background selection method using relative location is adopted to get preliminary saliency maps. Finally, an optimization model is presented to combine the saliency maps to get saliency detection results. Quantitative evaluations are carried out on public saliency detection dataset. The results demonstrate that the proposed method can outperform the other state-of-the-art method by using relative location measure.
机译:显着性检测已成为众多计算机视觉应用程序的关键要求。传统的流形排序模型可以有效地测量区域之间的相似性,因此已被广泛用于显着性检测,但是大多数模型都利用了颜色和纹理信息,而对象的位置信息却没有得到很好的利用,因此在出现问题时无法正常工作物体是低对比度的。基于流形排序模型,提出了光场图像中物体的相对位置测量方法。然后采用一种采用相对位置的自适应前景选择和背景选择方法来获得初步的显着性图。最后,提出了一个优化模型来结合显着性图以获得显着性检测结果。在公共显着性检测数据集上进行定量评估。结果表明,所提出的方法可以通过使用相对位置测量来胜过其他最新方法。

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