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Salient object detection via boosting object-level distinctiveness and saliency refinement

机译:通过增强对象级别的独特性和显着性细化来进行显着对象检测

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Many salient object detection approaches share the common drawback that they cannot uniformly highlight heterogeneous regions of salient objects, and thus, parts of the salient objects are not discriminated from background regions in a saliency map. In this paper, we focus on this drawback and accordingly propose a novel algorithm that more uniformly highlights the entire salient object as compared to many approaches. Our method consists of two stages: boosting the object-level distinctiveness and saliency refinement. In the first stage, a coarse object-level saliency map is generated based on boosting the distinctiveness of the object proposals in the test images, using a set of object-level features and the Modest AdaBoost algorithm. In the second stage, several saliency refinement steps are executed to obtain a final saliency map in which the boundaries of salient objects are preserved. Quantitative and qualitative comparisons with state-of-the-art approaches demonstrate the superior performance of our approach. (C) 2017 Elsevier Inc. All rights reserved.
机译:许多显着物体检测方法都有一个共同的缺点,即它们不能均匀地突出显示显着物体的异质区域,因此,显着图中的显着物体的某些区域与背景区域没有区别。在本文中,我们着眼于这一缺点,因此提出了一种新颖的算法,与许多方法相比,该算法可以更均匀地突出显示整个显着对象。我们的方法包括两个阶段:提高对象级别的独特性和显着性细化。在第一阶段,使用一组对象级特征和Modest AdaBoost算法,基于增强对象建议在测试图像中的独特性,生成粗糙的对象级显着性图。在第二阶段,执行几个显着性细化步骤以获得最终显着性图,其中保留了显着对象的边界。与最先进方法的定量和定性比较证明了我们方法的优越性能。 (C)2017 Elsevier Inc.保留所有权利。

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