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Salient object detection via objectness measure

机译:通过客观性措施进行显着物体检测

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Salient object detection has become an important task in many image processing applications. The existing approaches exploit background prior and contrast prior to attain state of the art results. In this paper, instead of using background cues, we estimate the foreground regions in an image using objectness proposals and utilize it to obtain smooth and accurate saliency maps. We propose a novel saliency measure called ‘foreground connectivity’ which determines how tightly a pixel or a region is connected to the estimated foreground. We use the values assigned by this measure as foreground weights and integrate these in an optimization framework to obtain the final saliency maps. We extensively evaluate the proposed approach on two benchmark databases and demonstrate that the results obtained are better than the existing state of the art approaches.
机译:显着物体检测已成为许多图像处理应用程序中的重要任务。现有方法利用背景先验和对比来获得最先进的结果。在本文中,我们使用客观性建议来估计图像中的前景区域,而不是使用背景提示,并利用它来获得平滑且准确的显着性图。我们提出了一种新颖的显着性测度,称为“前景连通性”,可以确定像素或区域与估算前景的紧密程度。我们使用此度量分配的值作为前景权重,并将其集成到优化框架中以获得最终显着性图。我们在两个基准数据库上对提议的方法进行了广泛的评估,并证明所获得的结果优于现有的最新方法。

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