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Graph-based hierarchical video segmentation based on a simple dissimilarity measure

机译:基于简单差异度量的基于图的分层视频分割

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Hierarchical video segmentation provides region-oriented scale-space, i.e., a set of video segmentations at different detail levels in which the segmentations at finer levels are nested with respect to those at coarser levels. In this work, the hierarchical video segmentation is transformed into a graph partitioning problem in which each part corresponds to one supervoxel of the video, and we present a new methodology for hierarchical video segmentation which computes a hierarchy of partitions by a reweigh-ting of the original graph using a simple dissimilarity measure in which a not too coarse segmentation can be easily inferred. We also provide an extensive comparative analysis, considering quantitative assessments showing accuracy, ease of use, and temporal coherence of our methods - p-HOScale, cp-HOScale and 2cp-H0Scale. According to the experiments, the hierarchy inferred by our methods produces good quantitative results when applied to video segmentation. Moreover, unlike to other tested methods, space and time cost of our methods are not influenced by the number of supervoxels to be computed.
机译:分层视频分段提供了面向区域的比例空间,即一组在不同细节级别的视频分段,其中相对于较粗糙级别的分段嵌套了较细级别的分段。在这项工作中,分层视频分割被转换成一个图形分割问题,其中每个部分对应于一个视频的超体素,并且我们提出了一种用于分层视频分割的新方法,该方法通过重新称重图像来计算分区的层次结构。使用简单的不相似度度量的原始图,其中可以很容易地推断出不太粗的分割。我们还提供了广泛的比较分析,考虑了定量评估,这些评估显示了我们方法-p-HOScale,cp-HOScale和2cp-H0Scale的准确性,易用性和时间一致性。根据实验,我们的方法推断出的层次结构在应用于视频分割时可产生良好的定量结果。而且,与其他测试方法不同,我们方法的空间和时间成本不受要计算的超体素数量的影响。

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