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Deep Salient Object Detection by Integrating Multi-level Cues

机译:集成多级提示进行深度显着目标检测

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A key problem in salient object detection is how to effectively exploit the multi-level saliency cues in a unified and data-driven manner. In this paper, building upon the recent success of deep neural networks, we propose a fully convolutional neural network based approach empowered with multi-level fusion to salient object detection. By integrating saliency cues at different levels through fully convolutional neural networks and multi-level fusion, our approach could effectively exploit both learned semantic cues and higher-order region statistics for edge-accurate salient object detection. First, we fine-tune a fully convolutional neural network for semantic segmentation to adapt it to salient object detection to learn a suitable yet coarse perpixel saliency prediction map. This map is often smeared across salient object boundaries since the local receptive fields in the convolutional network apply naturally on both sides of such boundaries. Second, to enhance the resolution of the learned saliency prediction and to incorporate higher-order cues that are omitted by the neural network, we propose a multi-level fusion approach where super-pixel level coherency in saliency is exploited. Our extensive experimental results on various benchmark datasets demonstrate that the proposed method outperforms the state-of the-art approaches.
机译:显着目标检测中的关键问题是如何以统一和数据驱动的方式有效地利用多级显着性线索。在本文中,基于深度神经网络的最新成功,我们提出了一种基于全卷积神经网络的方法,该方法具有多级融合功能,可用于显着目标检测。通过完全卷积神经网络和多级融合来集成不同级别的显着性提示,我们的方法可以有效地利用学习的语义提示和高阶区域统计信息进行边缘精确的显着目标检测。首先,我们对用于语义分割的全卷积神经网络进行微调,以使其适合于显着目标检测,以学习合适的但粗略的逐像素显着性预测图。由于卷积网络中的局部感受场自然地应用于此类边界的两侧,因此该图通常会在显着的对象边界上被涂抹。其次,为了提高学习的显着性预测的分辨率并结合神经网络所省略的高阶线索,我们提出了一种利用显着性中超像素级相干性的多级融合方法。我们在各种基准数据集上的广泛实验结果表明,所提出的方法优于最新方法。

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