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A benchmark for comparison of cell tracking algorithms

机译:单元跟踪算法比较的基准

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Motivation: Automatic tracking of cells in multidimensional time-lapse fluorescence microscopy is an important task in many biomedical applications. A novel framework for objective evaluation of cell tracking algorithms has been established under the auspices of the IEEE International Symposium on Biomedical Imaging 2013 Cell Tracking Challenge. In this article, we present the logistics, datasets, methods and results of the challenge and lay down the principles for future uses of this benchmark. Results: The main contributions of the challenge include the creation of a comprehensive video dataset repository and the definition of objective measures for comparison and ranking of the algorithms. With this benchmark, six algorithms covering a variety of segmentation and tracking paradigms have been compared and ranked based on their performance on both synthetic and real datasets. Given the diversity of the datasets, we do not declare a single winner of the challenge. Instead, we present and discuss the results for each individual dataset separately.
机译:动机:在多维延时荧光显微镜中自动跟踪细胞是许多生物医学应用中的重要任务。在IEEE国际医学医学影像研讨会2013年细胞追踪挑战赛的主持下,建立了用于细胞追踪算法客观评估的新颖框架。在本文中,我们介绍了挑战的物流,数据集,方法和结果,并为该基准的未来使用奠定了原则。结果:挑战的主要贡献包括创建了一个全面的视频数据集存储库,以及定义了用于比较和排名算法的客观指标。以此基准为基准,已比较了涵盖各种分割和跟踪范式的六种算法,并根据其在合成数据集和实际数据集上的性能进行了排名。考虑到数据集的多样性,我们不会宣布挑战的唯一赢家。相反,我们分别介绍和讨论每个单独数据集的结果。

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