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Saliency Estimation Model Based on Superpixel and Regions Contrast

机译:基于超像素和区域对比度的显着性估计模型

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摘要

Human vision system has a remarkable ability to distinguish salient objects from the complex scenes in real time effortlessly and efficiently. But it is still remains the significant challenge to establish the computational model of this basic intelligent behavior in the fields of computer vision. Based on superpixel segmentation and the regions contrast scheme, one saliency estimation model is proposed in the paper. Firstly, the method of the superpixel lattice segmentation is implemented to generate superpixels for the input image, and then according to the superpixel segmentation, the regions contrast strategy is incorporated in order to calculate the saliency maps of the input image, finally the saliency estimation results are obtained with relatively low computational complexity. Compared with the context-aware saliency method, the better advantage of this saliency estimation model proposed in this paper is that the computational complexity is obviously reduced. Furthermore, the full resolution saliency maps can be achieved using the proposed saliency estimation model in this paper. At the same time, the experimental results also clearly demonstrate that the proposed model for saliency estimation is effective.
机译:人类视觉系统具有出色的能力,可以毫不费力地,高效地实时将重要物体与复杂场景区分开。但是,在计算机视觉领域中,建立这种基本智能行为的计算模型仍然是一项重大挑战。基于超像素分割和区域对比度方案,提出了一种显着性估计模型。首先,采用超像素点阵分割的方法为输入图像生成超像素,然后根据该超像素分割,采用区域对比度策略计算输入图像的显着性图,最后得出显着性估计结果。以相对较低的计算复杂度获得。与上下文感知显着性方法相比,本文提出的显着性估计模型的更好优点是显着降低了计算复杂度。此外,使用本文提出的显着性估计模型可以实现全分辨率显着性图。同时,实验结果也清楚地证明了所提出的显着性估计模型是有效的。

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