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Evaluation of Unsupervised Segmentation Algorithms for Silhouette Extraction in Human Action Video Sequences

机译:用于人类动作视频序列中轮廓提取的无监督分割算法的评估

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The main motivation of this work is to find and evaluate solutions for generating binary masks (silhouettes) of foreground targets in an automatic way. To this end, four renowned unsupervised image segmentation algorithms are applied to foreground segmentation. A comparison among these algorithms is carried out using the MuHAVi dataset of multi-camera human action video sequences. This dataset presents significant challenges in terms of harsh illumination resulting for example in high contrast and deep shadows. The segmentation results have been objectively evaluated against manually derived ground-truth silhouettes.
机译:这项工作的主要动机是寻找和评估解决方案,以自动方式生成前景目标的二进制掩码(轮廓)。为此,将四种著名的无监督图像分割算法应用于前景分割。使用多摄像机人类动作视频序列的MuHAVi数据集对这些算法进行了比较。该数据集在苛刻的照明方面提出了严峻的挑战,例如导致高对比度和深阴影。分割结果已针对手动得出的地面真实轮廓进行了客观评估。

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