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Image segmentation based on merging of sub-optimal segmentations

机译:基于次优分割合并的图像分割

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In this paper a heuristic segmentation algorithm is presented based on the oversegmentation of an image. The method uses a set of different segmentations of the image produced previously by standard techniques. These segmentations are combined to create the over-segmented image. They can be performed using different techniques or even the same technique with different initial conditions. Based on this oversegmentation a new method of region merging is proposed. The merging process is guided using only information about the behavior of each pixel in the input segmentations. Therefore, the results are an adequate combination of the features of these segmentations, allowing to mask the negative particularities of individual segmentations. In this work, the quality of the proposal is analyzed with both artificial and real images using a evaluation function as case of study. The results show that our algorithm produces high quality global segmentations from a set of low quality segmentations with reduced execution times.
机译:本文提出了一种基于图像过度分割的启发式分割算法。该方法使用先前通过标准技术产生的图像的一组不同分割。这些分割被组合以创建过度分割的图像。可以使用不同的技术甚至在不同的初始条件下使用相同的技术来执行它们。基于这种过度分割,提出了一种新的区域合并方法。仅使用有关输入分割中每个像素行为的信息来指导合并过程。因此,结果是这些细分的特征的充分组合,从而可以掩盖单个细分的负面特征。在这项工作中,以评估功能为例,通过人工和真实图像分析提案的质量。结果表明,我们的算法从一组低质量的细分中产生了高质量的全局细分,并减少了执行时间。

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